Difference between revisions of "Mathematics Jobs Wiki 2016-2017"

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Welcome to the Mathematics Jobs Wiki '''2016-2017''' research positions page.  This page collects information about the academic mathematics job market: positions, short lists, offers, acceptances, etc.  It lists positions at [[Mathematics PhD Programs|PhD-granting departments]] (including stat and applied math), and at departments that are research-oriented by other reasonable criteria.  See the [[Mathematics Jobs Wiki (Teaching)|teaching positions]] page for more teaching-oriented academic math jobs.
+
= Chip Find: Полное глобальное руководство по верифицированному поиску полупроводников, перекрёстному сопоставлению и управлению жизненным циклом =
  
To post news or corrections anonymously, please edit this wiki page yourself by clicking "edit" at an appropriate place. It is better to first register, but you can edit by IP number as well. You can contact the moderators through wikimathjob@gmail.com to report evil postings, (e.g. inaccurate information about yourself or other applicants), and other issues. We are interested in information provided in [http://en.wikipedia.org/wiki/Good_faith good faith]. Do not post wild hunches, and please respect the trust of your friends and colleagues.  
+
Современная инженерия опирается на точный поиск компонентов. Термин [https://chipmlcc.ru/product/category/integrated-circuits-ics-430.html найти чип] обозначает дисциплину, объединяющую автоматизацию проектирования электроники, аналитические данные и контроль закупок в единую систему. К 2025 году успешные конструкторские компании рассматривают подбор микросхем как управляемый инженерный процесс, гарантирующий, что каждое устройство — от малошумящего усилителя до беспроводного MCU — имеет подтверждённое происхождение.
  
'''Have you accepted a position?'''  If so, it's a great courtesy to other job applicants to post that information here.
+
Для справочного контекста см. статью [[Интегральная схема]]. Настоящий материал переносит теорию в плоскость практики: проверенные технические паспорта, алгоритмы перекрёстного сопоставления, оценку надёжности и многопоставочное управление жизненным циклом.
  
This site is currently supported by [http://www.math.ucdavis.edu/~mkoeppe/ Matthias Koeppe], [http://www.math.ucdavis.edu/~greg Greg Kuperberg], and [http://math.wayne.edu/~tmei/ Tao Mei].  Tao reads the e-mail and he will keep the correspondence confidential as appropriate.  '''Disclaimer:''' There is no guarantee that any information listed here is accurate; no warranty is expressed or implied.  UC Davis and the UC Davis Math Department do not endorse this project and disavow any responsibility for the information on this wiki.
+
== Проверенный перечень моделей ==
  
 +
{| class="wikitable"
 +
! Производитель / Семейство
 +
! Представительные модели
 +
! Ключевые особенности
 +
! Основные области применения
 +
|-
 +
| Analog Devices — прецизионные АЦП
 +
| [https://www.alldatasheet.com/datasheet-pdf/pdf/1391867/AD/AD4130-8BCBZ-RL7.html AD4130-8BCPZ]; AD4116, AD4003
 +
| 24-битный ΣΔ-АЦП с встроенным ПГУ и буфером опорного напряжения, сверхнизкое энергопотребление и утечка.
 +
| Промышленные измерительные системы, весы, медицинские датчики
 +
|-
 +
| Texas Instruments — электронный предохранитель (eFuse)
 +
| [https://chipmlcc.ru/product/details/texas-instruments/tps25944arvcr-4556770.html TPS25944ARVCR]; TPS2595, TPS25982
 +
| Регулируемый предел тока, блокировка обратного тока, быстрое срабатывание при КЗ, тепловая защита с автоперезапуском.
 +
| Автомобильные шлюзы, промышленные контроллеры
 +
|-
 +
| STMicroelectronics — беспроводной MCU
 +
| [https://www.alldatasheet.com/datasheet-pdf/pdf/1278553/STMICROELECTRONICS/STM32WB55RGV6ATR.html STM32WB55RGV6]; STM32WB10CC
 +
| Двухъядерная архитектура M4/M0+, Bluetooth 5 и IEEE 802.15.4, безопасная загрузка и обновление ПО по воздуху.
 +
| IoT-узлы, носимые устройства, автоматизация зданий
 +
|-
 +
| Microchip — контроллер и трансивер CAN
 +
| [https://chipmlcc.ru/product/details/microchip-technology/mcp25625-e-ml.html MCP25625-E/SN]; MCP2562FD
 +
| Интегрированный контроллер CAN 2.0B и PHY через SPI; диагностические регистры, счётчики ошибок, режим сна.
 +
| Авто-ЭБУ, робототехника, промышленные сети
 +
|-
 +
| Infineon — умный высокобоковой ключ
 +
| [https://chipmlcc.ru/product/lcdetails/bts50085-1tma.html BTS50085-1TMA]; BTS5010-1EKA
 +
| Работа при напряжении до 42 В, контроль тока и тепловая защита; устойчивость к КЗ и диагностическая обратная связь.
 +
| Автомобильное освещение, соленоиды, замена реле
 +
|-
 +
| Renesas — ультра-малопотребляющий MCU
 +
| [https://www.alldatasheet.com/datasheet-pdf/pdf/1275920/RENESAS/R7FA2L1AB2DFP.html R7FA2L1AB2DFP]; RA2E2
 +
| Ядро Arm M23 с частотой 48 МГц, ток покоя в нанамперах, аппаратное шифрование AES/SHA, компактный QFN-корпус.
 +
| Батарейные датчики, умный дом, портативная электроника
 +
|-
 +
| NXP — защищённый элемент EdgeLock
 +
| [https://www.alldatasheet.com/datasheet-pdf/pdf/1246302/NXP/SE050C2.html SE050C2]; SE051H
 +
| Безопасность EAL6+, аппаратная криптография (ECC/RSA/AES), I²C-интерфейс для TLS/аттестации.
 +
| Аутентификация, платёжные системы, промышленный IoT
 +
|-
 +
| Silicon Labs — энергоэффективный MCU
 +
| [https://www.alldatasheet.com/datasheet-pdf/pdf/1572517/SILABS/EFM32PG22C200F512IM40-C.html EFM32PG22C200F512IM40]; EFM32PG24
 +
| Ядро M33 до 76,8 МГц, ток сна менее 1 мкА, встроенные операционные усилители и 12-битный АЦП.
 +
| Счётчики энергии, портативная медицина, носимые устройства
 +
|-
 +
| ROHM — двойной малошумящий ОУ
 +
| [https://chipmlcc.ru/product/details/rohm-semiconductor/ba4560f-e2.html BA4560F-E2]; BA4558F
 +
| Шум 4 нВ/√Гц, полоса 10 МГц, стабильность при единичном усилении; питание ±4…±15 В.
 +
| Аудиопредусилители, активные фильтры
 +
|}
  
== Key ==
+
== Введение — почему точный поиск чипов имеет значение ==
  
{|
+
Полупроводниковый рынок середины 2020-х изобилен и одновременно нестабилен. Десятки тысяч активных позиций сосуществуют с еженедельными уведомлениями о снятии с производства. Инженеры не могут полагаться на интуицию: необходимо количественно подтверждать эквивалентность, проверять жизненный цикл и гарантировать, что замена сохраняет характеристики и соответствие нормативам.
|+
+
 
 +
Надёжный процесс базируется на четырёх столпах: точность данных, прозрачность межпоставщиков, воспроизводимость характеристик и устойчивость жизненного цикла.
 +
 
 +
== Методики оценки и калибровки ==
 +
 
 +
После выбора компонентов инженер должен проверить допуски, температурные коэффициенты и реальные характеристики в составе узла. Каждая проверка документируется в лабораторном журнале и хранится рядом с исходным листом спецификаций. Используются три уровня проверки:
 +
 
 +
* '''Лабораторная:''' измерение параметров отдельных ИС и пассивных элементов в диапазоне −40…+125 °C.
 +
* '''Стендовая:''' проверка под нагрузкой и в типовых электрических схемах.
 +
* '''Эксплуатационная:''' сбор данных с пилотных образцов, сравнение статистики с эталоном.
 +
 
 +
== Сравнительный анализ моделей и заменителей ==
 +
 
 +
=== Технические характеристики ===
 +
 
 +
{| class="wikitable"
 +
! Модель
 +
! Разрядность / Архитектура
 +
! Питание (В)
 +
! Потребление (мА)
 +
! Темп. диапазон (°C)
 +
! Примечания
 +
|-
 +
| AD4130-8BCPZ || 24 бит ΣΔ ADC || 2.7–3.6 || 0.29 || −40…+125 || Высокоточный, низкий шум, промышленный класс
 +
|-
 +
| TPS25944ARVCR || eFuse || 2.7–18 || до 100 || −40…+125 || Защита от КЗ, управление током
 
|-
 
|-
| '''Departments'''  
+
| STM32WB55RGV6 || ARM M4/M0+ || 1.8–3.6 || 8 || −40…+85 || BLE 5, 802.15.4, двухъядерный
| (a)
+
| applied
+
| (b)
+
| biomath/biostat
+
| (c)
+
| computational
+
|-
+
|
+
| (o)
+
| optimization/OR
+
| (p)
+
| physics/QCQI
+
| (s)
+
| statistics
+
 
|-
 
|-
|
+
| MCP25625-E/SN || CAN Ctrl + PHY || 4.5–5.5 || 15 || −40…+125 || Интегрированный SPI интерфейс
| *
+
| nowrap | [http://www.mathjobs.org/jobs MathJobs] position
+
 
|-
 
|-
| '''Positions'''
+
| BTS50085-1TMA || Smart Switch || 4.5–42 || || −40…+150 || Высокое напряжение, диагностика
| (p)
+
| nowrap | merely preferred
+
| (t)
+
| tenured position
+
| (u)
+
| tenure-track
+
 
|-
 
|-
|
+
| R7FA2L1AB2DFP || ARM M23 || 1.6–3.6 || 0.5 || −40…+105 || Низкое потребление, AES аппаратно
| (o)
+
| open rank
+
| (''n'')
+
| ''n'' positions
+
 
|-
 
|-
| '''Apply by'''
+
| SE050C2 || Secure Element || 1.62–3.6 || — || −40…+90 || Криптография ECC/RSA
| (∞)
+
| open indefinitely
+
| (*)
+
| created position
+
 
|-
 
|-
| '''Names'''
+
| EFM32PG22C200F512IM40 || ARM M33 || 1.7–3.8 || 0.8 || −40…+125 || Энергосберегающий, периферия в корпусе
| ''italic''
+
| offer
+
| '''bold'''
+
| accepted
+
| <s>strike</s>
+
| withdrawn/declined
+
 
|-
 
|-
|
+
| BA4560F-E2 || Dual OpAmp || ±4–15 || — || −40…+85 || Низкий шум, аудио/прецизионный
| ...
+
| and others
+
|
+
| nowrap | search completed
+
 
|}
 
|}
  
"Apply by" can mean a strict deadline, or full consideration, or something else. Expired deadlines may be replaced by the last deadline listed.  See the ads for details.
+
== Ресурсы для поиска и перекрёстного сопоставления ==
  
Note that the links should be directed to the job announcements rather than the department homepage.
+
* [https://www.digikey.com DigiKey]
 +
* [https://www.mouser.com Mouser]
 +
* [https://www.octopart.com Octopart]
 +
* [https://www.findchips.com FindChips]
 +
* [https://componentsearchengine.com Component Search Engine]
 +
* [https://chipmlcc.ru ChipMLCC (поиск по складам и параметрам)]
 +
* [https://www.alldatasheet.com AllDatasheet (PDF-спецификации)]
  
 +
== Заключение ==
  
== United States ==
+
Грамотный подход к поиску и анализу полупроводниковых компонентов требует не только технической экспертизы, но и стратегического мышления. Используйте автоматизированные инструменты подбора, сопоставления и проверки. Заменители следует подбирать с точной верификацией всех параметров, чтобы избежать функциональных отклонений и логистических сбоев.
  
 +
== См. также ==
  
 +
* [[Интегральная схема]]
 +
* [[Электронный компонент]]
 +
* [[Жизненный цикл изделия]]
  
=== Long-term positions ===
 
  
==== A-K ====
 
{|
 
|+
 
| '''Institution'''
 
| '''Areas'''
 
| nowrap | '''Apply by'''
 
| '''Short lists/offers'''
 
|- valign=top
 
| [https://www.mathjobs.org/jobs/jobs/9165 Arizona St U]
 
| TT
 
| 11/15/2016
 
|        (pure math) offer out
 
|
 
|- valign=top
 
| [http://www.mathjobs.org/jobs/jobs/8989 Baylor  U ]
 
|   TT/
 
| 12/01/2016
 
|          filled
 
 
|- valign=top
 
|       
 
|        [https://www.mathjobs.org/jobs/jobs/8990 full prof.]
 
|        12/15/2016
 
|        offer out
 
|
 
|- valign=top
 
| [https://www.mathjobs.org/jobs/jobs/9301 Binghamton U ]
 
| Anal. TT
 
| 11/07/2016
 
|          [http://www.math.ku.edu/~l151c465/  Le Chen],...
 
|- valign=top
 
|       
 
|        Alge. TT
 
|        2016/10/18
 
|          Florian Sprung, Hung P. Tong-Viet
 
|       
 
|- valign=top
 
|       
 
|        Top TT
 
|        2016/11/07
 
|          <s>Steven Frankel</s>, '''Cary Malkiewich''', '''Jenya Sapir'''
 
|       
 
|- valign=top
 
| [https://www.mathjobs.org/jobs/jobs/9158 Boston C ]
 
| TT
 
| 11/01/2016
 
|          '''Kathryn Lindsey''', '''Keerthi Madapusi Pera'''
 
|
 
|- valign=top
 
| [https://www.mathjobs.org/jobs/jobs/9703 Case Western Reserve U]
 
| TT
 
| 01/15/2017
 
|      skype interviews
 
|
 
|- valign=top
 
| [https://www.mathjobs.org/jobs/jobs/9630 Clemson ]
 
| TT
 
| 11/01/2016
 
|      [https://www.math.wisc.edu/~jessica/ Jessica Lin]
 
|
 
|- valign=top
 
| [https://www.mathjobs.org/jobs/jobs/9291 CMU ]
 
| prob. TT
 
| 11/10/2016
 
|         
 
|
 
|- valign=top
 
| [https://www.mathjobs.org/jobs/jobs/9227 Duke ]
 
| TT
 
| 11/01/2016
 
|          [http://www.math.princeton.edu/~asl2 '''Adam Levine''']
 
|
 
|- valign=top
 
| [https://www.mathjobs.org/jobs/jobs/9374 Florida St ]
 
| TT
 
| 2016/11/15
 
|          [https://sites.google.com/site/benjjaye/ Benjamin Jaye], [http://people.math.gatech.edu/~glivshyts6/  Galyna Livshyts]
 
|
 
|- valign=top
 
|
 
| [https://www.mathjobs.org/jobs/jobs/9375 Biomath TT]
 
| 2016/11/15
 
|      [http://chadgiusti.com ''<s>Chad Giusti</s>'']
 
|
 
|- valign=top
 
| [https://www.mathjobs.org/jobs/jobs/9779 George Mason University]
 
|   TT/
 
|
 
|          Two offers out.
 
|
 
|- valign=top
 
| [https://www.mathjobs.org/jobs/jobs/9183 Georgia Tech]
 
| TT
 
| 11/01/2016
 
|      [http://www-stat.wharton.upenn.edu/~tengyuan Tengyuan Liang], [http://math.jhu.edu/~wliao/ Wenjing Liao]
 
|
 
|- valign=top
 
| [https://www.mathjobs.org/jobs/jobs/9307 GWU]
 
| TT
 
| 12/01/2016
 
|      <s>Kathryn Lindsey</s>, <s>Nathan Totz</s>, Stefan van Zwam, Joel Lewis, James Freitag, William Boney  □
 
|
 
|}
 
  
==== L-T ====
+
= Understanding Amplifier IC Audio: Power, Precision, and Performance =
  
{|
+
In the world of electronics, few components shape our listening experience as much as the '''[https://www.yy-ic.com/category/integrated-circuits-ics-430 amplifier IC audio]''' chip. These small yet powerful integrated circuits are the core of modern sound systems — from compact Bluetooth speakers to professional-grade studio amplifiers.
|+
+
| '''Institution'''
+
| '''Areas'''
+
| nowrap | '''Apply by'''
+
| '''Short lists/offers'''
+
|
+
|- valign=top
+
| LSU
+
| TT
+
|
+
|      [http://www.patelp.com/ Priyam Patel], [https://math.vanderbilt.edu/bischom/ Marcel Bischoff], ...
+
|- valign=top
+
| MIT
+
| TT
+
|
+
|      '''Yufei Zhao'''
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9502 Michigan State ]
+
| TT
+
|      NA
+
|      [https://math.mit.edu/~walpuski/  Thomas Walpuski], [https://sites.google.com/site/sanchayansenss/  Sanchayan Sen], [http://people.maths.ox.ac.uk/shaox/  Xuecheng Shao], [http://www-personal.umich.edu/~morilac/ Greg Muller]
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9286 CMSE ]
+
|
+
|      11/14/2016
+
| [http://chadgiusti.com Chad Giusti], [https://sites.google.com/site/danetaylorresearch/ Dane Taylor], ...Alden Waters
+
|
+
|- valign=top
+
| [https://hr.peoplesoft.nau.edu/psp/ph92prta/EMPLOYEE/HRMS/c/HRS_HRAM.HRS_APP_SCHJOB.GBL?Page=HRS_APP_JBPST&Action=U&FOCUS=Applicant&SiteId=2&JobOpeningId=602974&PostingSeq=1 NAU ]
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9086 Northwestern U ]
+
| TT
+
| 11/01/2016
+
|          [http://www.math.columbia.edu/~danhl Daniel Halpern-Leistner,] Bao Le Hung, John Lesieutre, Keerthi Madapusi Pera, Xuancheng Shao, ''(two offers made)''
+
|
+
|- valign=top
+
| Northwestern
+
| TT (a)
+
| 11/15/2016
+
|          [http://www.niallmangan.com '''Niall Mangan'''], Alexander Petroff, Yasmine Meroza, Anand Oza, Orit Peleg, Mikhail Tikhonov. (hiring two positions)
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9068  Notre Dame]
+
| TT
+
| 11/01/2016
+
|      [http://www.math.ucla.edu/~heilman/ '''Steven Heilman'''], Brandon Levin, Sanchayan Sen, ...?
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9148 Ohio St ]
+
| TT
+
| N/A
+
| [http://people.math.gatech.edu/~glivshyts6/ Galyna Livshyts], [http://willperkins.org  Will Perkins], Giang Tran, [http://www-users.cs.umn.edu/~yxi/ Yuanzhe Xi], '''Jennifer Park'''
+
|- valign=top
+
| Ohio University
+
| TT (a)
+
|
+
| Alden Waters
+
|- valign=top
+
|  [https://www.mathjobs.org/jobs/jobs/9086  Purdue University]
+
|      TT
+
|      11/30/2016
+
|    [https://www.math.utah.edu/~lquanma/  Linquan Ma]
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/8976 Rice U]
+
| TT
+
|      11/01/2016
+
|      Ben Webster
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9001 RPI ]
+
| TT (a)
+
| 11/01/2016
+
|        [https://sites.google.com/site/danetaylorresearch/ Dane Taylor], [http://olivery2001.wixsite.com/mysite-1  Yang Yang], [https://www.math.ucdavis.edu/~kewei/ Ke Wei], [http://people.math.gatech.edu/~myashtini3/ Maryam Yashtini],
+
|
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/8985 Rutgers U]
+
| TT
+
|      11/01/2016
+
|          [http://www.ma.utexas.edu/users/ros.oton/ Xavier Ros-Oton], <s>Kathryn Lindsey</s>
+
|
+
|- valign=top
+
|      [https://www.mathjobs.org/jobs/jobs/9090 SFSU]
+
|      TT
+
|      12/04/2016
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9207 Temple U ]
+
| TT
+
| 12/31/2016
+
|          [http://users.math.yale.edu/users/taylor/ '''Samuel Taylor'''], [http://www.math.ucla.edu/~heilman/ Steven Heilman], [http://www.patelp.com Priyam Patel], [http://willperkins.org William Perkins], [http://web.stanford.edu/~yangtian/ Tian Yang]
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9392 Texas A&M ]
+
| TT
+
| 11/15/2016
+
|          [http://www.math.ucla.edu/~heilman/ Steven Heilman], [https://web.math.princeton.edu/~tme2/ Tarek Elgindi], [http://web.stanford.edu/~yangtian/ Tian Yang], [https://sites.google.com/site/brumicsww/ Wei Wu], '''[https://sites.google.com/site/junehyuk/ Junehyuk Jung]''', [http://faculty.washington.edu/chirva/ Alexandru Chirva], [http://web.math.ucsb.edu/~nathanfwilliams/ Nathan Williams], Kody Law, [https://www.math.wisc.edu/~jessica/ Jessica Lin], [http://www.its.caltech.edu/~adamsh/ Adam Sheffer], Grigori Avramidi, [http://math.mit.edu/~bhanin/ Boris Hanin]
+
|
+
|-valign=to
+
|        [https://www.mathjobs.org/jobs/jobs/8936 Texas Tech ]
+
|        TT
+
|        1/15/2017
+
|        Skype interviews
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9043    Tufts U ]
+
| TT
+
| 11/4/2016
+
|          '''David Ishii Smyth'''
+
|
+
|}
+
  
==== UA-UL ====
+
According to [https://en.wikipedia.org/wiki/Audio_power_amplifier Wikipedia], an audio amplifier is a device that increases the power of audio signals, driving loudspeakers or headphones without distortion. In integrated circuit form, they deliver excellent efficiency, low heat, and compact performance ideal for both consumer and industrial audio applications.
  
{|
+
== What Is an Amplifier IC Audio? ==
|+
+
| '''Institution'''
+
| '''Areas'''
+
| nowrap | '''Apply by'''
+
| '''Short lists/offers'''
+
|
+
|- valign=top 
+
| [https://www.mathjobs.org/jobs/jobs/9334 UAlbany]
+
| TT (topology)
+
|      2016/12/01
+
|      Robin Koytcheff, Rebecca Winarski, '''Michael Lesnick''', '''Matthew Zaremsky''', '''Justin Curry'''
+
|
+
|
+
|- valign=top 
+
| U Arizona
+
| TT
+
|     
+
|      '''Anton Izosimov''', ..
+
|
+
|- valign=top 
+
| [https://www.mathjobs.org/jobs/jobs/8871 U Buffalo]
+
| TT
+
|      2016/11/01
+
|      Swarnava Mukhopadhyay, Hung P. Tong-Viet, [http://faculty.washington.edu/chirva/ '''Alex Chirvasitu''']...
+
|- valign=top 
+
|
+
| TT (a)
+
|      2016/11/01
+
| [https://sites.google.com/site/danetaylorresearch/ '''Dane Taylor''']
+
|
+
|- valign=top 
+
| UC Berkeley
+
| TT
+
|      2016/11/01
+
|      Semyon Dyatlov, Daniel Halpern-Leistner, Kathryn Mann, Song Sun, Yufei Zhao
+
  
|- valign=top
+
An '''amplifier IC audio''' (integrated circuit audio amplifier) is a chip that takes a low-level audio input signal and boosts it into a powerful output capable of driving speakers. Unlike discrete amplifiers built from individual transistors and resistors, amplifier ICs integrate all stages — input, voltage gain, and output — into one silicon package.
| [https://www.mathjobs.org/jobs/jobs/9004 UC Davis]
+
| TT(a)
+
|      2016/12/15
+
|      Haizhao Yang, Xiuyuan Cheng, Alex Cloninger, Shiqian Ma, Michael Lesnick, Annie Raymond
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/8955 UC Irvine]
+
| TT(a)
+
|      2016/11/01
+
|      Steven Heilman, Florian Sprung, Alejandro Morales, Tarek Elgindi, Haizhao Yang, Sanchayan Sen, '''Jesse Wolfson''', Nguyen Nguyen, Victoria Akin, Martina Hofmanova, '''Roman Vershynin''', '''Paata Ivanisvili'''
+
|
+
|- valign=top
+
| UCLA
+
| TT
+
|
+
|      [https://www.ma.utexas.edu/users/yucheng/ Cheng Yu], Xavier Ros-Oton
+
|
+
|
+
|- valign=top
+
| UCONN
+
| TT
+
|......
+
|
+
|
+
|- valign=top
+
| UCSD
+
| TT
+
|
+
|      Olya Mandelshtam, Ming Xiao, Lukas Janson, '''Andrew Suk''', ''David Hansen'', Yoonsang Lee, Haizhao Yang, Daniel Halpern-Leistner, Alexander Cloninger, Tamas Darvas, Alexandra Kolla, Adam Sheffer, '''Tarek Elgindi'''
+
|
+
|- valign=top
+
|  UC Santa Barbara
+
|      TT
+
|
+
|    [https://www.math.wisc.edu/~jessica/ Jessica Lin], [https://math.berkeley.edu/~ifrim/Site_3/Home.html  Mihaela Ifrim]
+
|
+
|- valign=top
+
|  UC Santa Cruz
+
|        TT
+
|        2016/12/09
+
|      '''Beren Sanders'''
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9282 U Delaware]
+
| TT
+
|      2016/11/15
+
|      [http://chadgiusti.com '''Chad Giusti'''], [http://www.math.ucla.edu/~heilman/ Steven Heilman], [http://math.jhu.edu/~wliao/ Wenjing Liao],  [http://vucdinh.github.io/ '''Vu Dinh''']
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9330 U Denver]
+
| TT
+
| 12/01/2016
+
|     
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9797 U Hawaii]
+
| TT
+
|     
+
|      '''Malik Younsi'''
+
|
+
|- valign=top
+
| UIC
+
| TT
+
|
+
|      Giulia Sacca, Tamas Darvas, '''Julius Ross''', Aaron Brown,...
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9137 U Kansas]
+
| Prob/stat
+
| 11/01/2016
+
|
+
|- valign=top
+
| U Kentucky
+
| TT
+
|
+
|     
+
|}
+
  
==== UM-UZ ====
+
This makes them smaller, more reliable, and easier to design into any sound system.
  
{|
+
== Common Audio Amplifier IC Models ==
|+
+
| '''Institution'''
+
| '''Areas'''
+
| nowrap | '''Apply by'''
+
| '''Short lists/offers'''
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9945 U Maine]
+
| TT
+
| 03/21/2017
+
|  Skype interviews
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9200 U Maryland]
+
| TT
+
| 11/07/2016
+
|  '''Tamas Darvas''', '''Lise-Marie Imbert-Gérard''',...
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9059 U Miami]
+
| Analysis
+
|      11/01/2016   
+
|      [https://www.dpmms.cam.ac.uk/~jjs48/ Jan Sbierski], [https://www.math.wisc.edu/~jessica/ Jessica Lin], Verónica Quítalo, '''Nathan Totz''', [http://www.math.umd.edu/~micotize/ Michele Coti Zelati]
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9200 U Minnesota]
+
| TT
+
| 11/07/2016
+
|  ''Hao Shen''
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9646 U Mississippi]
+
| TT
+
| 12/12/2016
+
|     
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/8953 U Oregon]
+
| TT
+
| 11/01/2016
+
|  Tamas Darvas, Sam Raskin,...
+
|   
+
|- valign=top
+
| UT Austin
+
| TT
+
|
+
|      campus interviews
+
|
+
|- valign=top
+
|[https://www.mathjobs.org/jobs/jobs/9681 UT Dallas]
+
|TT
+
|11/09/2016
+
| skype interviews completed,
+
|- valign=top
+
|[https://www.mathjobs.org/jobs/UTSA/APAIM UTSA]
+
|TT Appl.
+
|11/27/2016
+
| [https://sites.google.com/site/mircpetrache/home Mircea Petrache],
+
|
+
|- valign=top
+
|[https://www.mathjobs.org/jobs/jobs/9962 U Toledo]
+
|TT
+
|02/15/2017
+
| campus interview completed,
+
|
+
|- valign=top
+
| Utah
+
| TT
+
|
+
|      Giulia Sacca, Jun Allard, Ricardo Alonso, Martina Hofmanova, Yu Gu, Andrew Snowden, Aaron Brown, Brandon Levin, Michele Coti Zelati, [https://sites.google.com/site/danetaylorresearch/ Dane Taylor],[http://math.jhu.edu/~wliao/ Wenjing Liao]
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9654 Utah State]
+
| TT topol/geom
+
|12/04/2016
+
|      campus interviews scheduled,
+
|
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9113  U Virginia]
+
|  TT
+
|  11/01/2016
+
|  [http://as.vanderbilt.edu/math/bio/benjamin-hayes '''Ben Hayes'''], [http://web.stanford.edu/~yangtian/ Tian Yang], [https://www.ma.utexas.edu/users/hwilliams/ Harold Williams], [https://sites.google.com/site/aynurbulut/ Annur Bulut]
+
|
+
|}
+
  
==== V-Z ====
+
Here are some widely used '''amplifier IC audio''' models that engineers and hobbyists depend on:
  
{|  
+
{| class="wikitable"
|+
+
! '''Model Number''' !! '''Description''' !! '''Power Output''' !! '''Common Application'''
| '''Institution'''
+
|-
| '''Areas'''
+
| '''[https://www.alldatasheet.com/datasheet-pdf/pdf/558009/TI1/LM386.html LM386]''' || Low-voltage audio amplifier || 0.5 W || Portable radios, toys
| nowrap | '''Apply by'''
+
|-
| '''Short lists/offers'''
+
| '''TDA2030A''' || Hi-Fi class AB amplifier || 14 W || Home audio, subwoofers
|
+
|-
|- valign=top
+
| '''PAM8403''' || Class D stereo amplifier || 3 W per channel || Bluetooth speakers
| Vanderbilt University
+
|-
| TT
+
| '''LM4871''' || Bridge-connected audio amplifier || 3 W || Laptops, multimedia devices
|      11/01/2016
+
|-
|    [https://www.math.wisc.edu/~jessica/ Jessica Lin], [http://people.math.gatech.edu/~myashtini3/ Maryam Yashtini], [http://www.math.washington.edu/~bviray/ Bianca Viray], [https://www.math.uh.edu/~quaini/ Annalisa Quaini  ]
+
| '''TDA7294''' || High-power audio amplifier || 100 W || Studio amplifiers
|
+
|-
|- valign=top
+
| '''MAX9744''' || Class D digital amplifier with I²C || 20 W || Embedded systems
| [https://www.mathjobs.org/jobs/jobs/9120 VCU ]
+
|-
| TT
+
| '''TPA3116D2''' || Efficient class D amplifier || 50 W || Car audio systems
| 11/01/2016
+
|-
|         [http://www.math.ucla.edu/~heilman/ Steven Heilman]
+
| '''NJM2073''' || Dual audio amplifier || 1.2 W || Intercoms, TVs
|- valign=top
+
| Wayne State
+
| TT
+
|
+
|         Joel Lewis, Fernando Charro, Rachel Davis
+
|- valign=top
+
| WISC
+
| TT
+
|
+
|         [https://math.berkeley.edu/~kpmann/ ''<s>Kathryn Mann</s>''], Kathryn Lindsey, '''Botong Wang''', Aaron Brown, Tamas Darvas, Stefan Steinberger, ''Hao Shen''  □
+
|- valign=top
+
| Wash. U. in St. Louis
+
| TT
+
|
+
|         '''Steven Frankel''', ''<s> Kathryn Lindsey</s> '', '''Yanli Song''', Sho Tanimoto, Hung Tran, Botong Wang □
+
 
|}
 
|}
  
=== Fellowships and institutes ===
+
These models represent the diversity of amplifier ICs available — from low-voltage mini amps to powerful integrated modules.
{|
+
|+
+
| '''Institute'''
+
| '''Award'''
+
| nowrap | '''Apply by'''
+
| '''Short lists/offers'''
+
|
+
|}
+
  
=== Temporary positions ===
+
== How Amplifier IC Audio Chips Work ==
  
==== A-K ====
+
Amplifier ICs use internal transistor networks and feedback mechanisms to increase signal amplitude without altering waveform characteristics. The process involves:
  
{|
+
* '''Input stage:''' Receives the low-level signal.
|+
+
* '''Voltage gain stage:''' Amplifies the signal strength.
| '''Institution'''
+
* '''Output stage:''' Drives the speaker or external load.
| '''Name/type'''
+
* '''Feedback loop:''' Maintains signal fidelity and reduces distortion.
| nowrap | '''Apply by'''
+
|'''Short lists/offers'''
+
|
+
  
|- valign=top
+
Some advanced ICs, such as the '''TPA3116D2''', integrate '''digital PWM (Pulse Width Modulation)''' technology to achieve over 90% efficiency with minimal heat loss.
|[https://www.mathjobs.org/jobs/jobs/9202 Duke University]*
+
|  Elliott Assistant Research Professor
+
| 12/1/2016
+
| [http://akosnagy.com/ '''Ákos Nagy'''] (offer on Jan 24)
+
|
+
|}
+
  
==== L-T ====
+
== Technical Advantages ==
  
{|
+
Modern amplifier ICs offer multiple performance benefits:
|+
+
 
| '''Institution'''
+
{| class="wikitable"
| '''Name/type'''
+
! '''Feature''' !! '''Benefit'''
| nowrap | '''Apply by'''
+
|-
|'''Short lists/offers'''
+
| High SNR (Signal-to-Noise Ratio) || Cleaner, clearer sound
|
+
|-
 +
| Low THD (Total Harmonic Distortion) || Natural audio reproduction
 +
|-
 +
| Thermal shutdown protection || Prevents damage from overheating
 +
|-
 +
| Short-circuit protection || Ensures safe operation
 +
|-
 +
| Compact package || Enables portable and efficient design
 
|}
 
|}
  
==== UA-UL ====
+
These features make amplifier ICs an indispensable choice for compact and efficient sound systems.
  
{|
+
== Applications of Amplifier ICs ==
|+
+
| '''Institution'''
+
| '''Areas'''
+
| nowrap | '''Apply by'''
+
| '''Short lists/offers'''
+
|
+
|}
+
  
==== UM-UZ ====
+
Amplifier IC audio components are everywhere:
  
{|
+
# '''Consumer Electronics:''' Used in TVs, laptops, radios, and Bluetooth speakers.
|+
+
# '''Automotive Systems:''' Found in infotainment units and dashboard sound modules.
| '''Institution'''
+
# '''Industrial Devices:''' Public address systems, intercoms, and signal processing.
| '''Name/Type'''
+
# '''Professional Audio Equipment:''' Mixers, studio monitors, and amplifiers.
| nowrap | '''Apply by'''
+
# '''Smart IoT Devices:''' Voice assistants and wireless communication modules.
| '''Short lists/offers'''
+
|
+
  
|}
+
Their combination of efficiency, low power draw, and minimal distortion makes them ideal for modern designs.
  
==== V-Z ====
+
== Design and Integration Considerations ==
{|
+
|+
+
| '''Institution'''
+
| '''Name/Type'''
+
| nowrap | '''Apply by'''
+
| '''Short lists/offers'''
+
|
+
|}
+
  
== Canada ==
+
When integrating amplifier ICs into a system, designers should pay attention to:
=== Long-term positions ===
+
  
{|
+
* '''Power supply filtering:''' To reduce hum or ripple noise.
|+
+
* '''PCB layout:''' Keeping analog and digital grounds separate.
| '''Institution'''
+
* '''Heat management:''' Using proper heat sinks or copper pours.
| '''Name/Type'''
+
* '''Load impedance matching:''' To optimize power transfer.
| nowrap | '''Apply by'''
+
* '''Decoupling capacitors:''' For stable supply voltage.
| '''Short lists/offers'''
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9179 McGill]
+
| TT
+
| 10/31/2016
+
|          [http://www.math.ku.edu/~l151c465/ Le Chen], Hao Shen, [https://www.math.wisc.edu/~jessica/ Jessica Lin]
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/8876 UofA]
+
| TT
+
|
+
|       
+
|
+
|- valign=top
+
|              [https://www.mathjobs.org/jobs/jobs/9689 U Victoria]
+
|      TT
+
|      1/15/2017
+
|
+
|
+
|- valign=top
+
| [https://www.mathjobs.org/jobs/jobs/9349 U Toronto]
+
| TT
+
|      12/15/2016
+
|        [http://www.math.columbia.edu/~danhl Daniel Halpern-Leistner]
+
|
+
|
+
|- valigh=top
+
|          [https://www.mathjobs.org/jobs/jobs/9427 U of Waterloo] (a)
+
|      TT
+
|      11/30/2016
+
|        [http://people.math.gatech.edu/~rsinn3 Rainer Sinn]
+
|
+
|- valigh=top
+
|          [https://www.mathjobs.org/jobs/jobs/9515 UBC]
+
|      TT
+
|      12/05/2016
+
|}
+
  
=== Fellowships and institutes ===
+
Good design practices directly influence sound clarity and durability.
  
{|
+
== Why Choose YY-IC ==
|+
+
| '''Institute'''
+
| '''Award'''
+
| nowrap | '''Apply by'''
+
| '''Recipients'''
+
|}
+
  
=== Temporary positions ===
+
'''YY-IC''' provides a global inventory of '''audio amplifier ICs''' from major semiconductor manufacturers. With a large selection of parts like '''TDA2030A''', '''PAM8403''', and '''TPA3116D2''', YY-IC ensures customers get reliable, authentic, and cost-effective components for every design need.
  
{|
+
Benefits of sourcing from YY-IC include:
|+
+
| '''Institution'''
+
| '''Name/type'''
+
| nowrap | '''Apply by'''
+
| '''Offers/recipients'''
+
|
+
|
+
|}
+
  
== Germany ==
+
* Verified and authentic ICs from trusted brands
 +
* Comprehensive datasheets and product documentation
 +
* Fast worldwide delivery and professional sourcing support
 +
* Competitive pricing for both small and bulk orders
  
{|
+
Whether you're an electronics hobbyist or an industrial buyer, YY-IC simplifies your component procurement process.
|+
+
|-
+
| '''Key:'''&nbsp;&nbsp;
+
| (W1)
+
| assistant professor&nbsp;&nbsp;
+
| (W2)
+
| associate professor&nbsp;&nbsp;
+
| (W3)
+
| professor
+
|}
+
  
A shortlist reported on this wiki is the list of candidates who were invited to give a talk ("Einladung zum Vorstellungsvortrag"); the order of the names has no significance.  Official rankings of candidates ("Listenplätze"), if known, are indicated by a number in parentheses after a name, or they are implied by the order in which candidates who received <i>offers</i> ("Rufe") are listed.
+
== Future Trends in Audio Amplifier ICs ==
  
Preferred sorting order of names: Offers and acceptances in chronological order, followed by all other invited candidates in alphabetical order.
+
Next-generation amplifier ICs are combining '''AI-driven sound processing''', '''Bluetooth integration''', and '''energy-efficient Class D topologies''' into smaller, multi-functional chips. We’re seeing trends like:
  
=== Long-term/temp W positions ===
+
* Integrated DSP (Digital Signal Processing) for adaptive EQ
 +
* AI-based noise cancellation and voice optimization
 +
* Ultra-low-power Class D amplifiers for IoT
 +
* High-fidelity, miniaturized modules for wearable devices
  
Faculty searches in Germany do not follow the academic year schedule and sometimes take very long. We continue to collect information about these faculty positions (for jobs with deadlines before July 2016) in the [[Mathematics Jobs Wiki 2015-2016]] or pages corresponding to earlier years (use the navigation sidebar).
+
These innovations continue to push the limits of compact, high-performance sound amplification.
  
==== A-C ====
+
== Final Thoughts ==
  
{|
+
The '''amplifier IC audio''' chip continues to be a vital component in modern electronics, delivering precision, clarity, and power in every application — from simple speakers to smart, networked devices. For engineers and product designers, sourcing quality ICs from [https://www.yy-ic.com YY-IC] ensures consistency, reliability, and long-term performance in every circuit.
|+
+
| '''Institution'''
+
| '''Areas'''
+
| nowrap | '''Apply by'''
+
| '''Short lists/offers'''
+
|- valign=top
+
| U Aachen
+
| W3, applied
+
| 31.03.17
+
| campus visits complete
+
|- valign=top
+
| U Augsburg
+
| W3, optimization
+
|
+
| campus visits completed
+
|- valign=top
+
| HU Berlin
+
| appl anal (W3)
+
| 23.03.2017
+
|
+
|- valign=top
+
| HU Berlin / WIAS
+
| appl math (W3-S)
+
| 23.03.2017
+
|
+
|- valign=top
+
| U Bonn
+
| junior fellows (W2, temporary)
+
|
+
| Schottmüller, Gobbi, Dirksen, Ray, Eckhardt, Iacobelli, Walpuski, Cesnavicius, ''<s> Ros-Oton</s>'', Sacca, Qi
+
|- valign=top
+
| U Bonn
+
| math model (W2, temporary)
+
| 01.07.2017
+
|
+
|- valign=top
+
| TU Chemnitz
+
| [https://www.tu-chemnitz.de/verwaltung/personal/stellen/W2_Inv_Probleme.php inverse problems (W2)]
+
| 23.04.2017
+
| Klann, Berkels, Bergmann, Valkonen, Pietschmann, Werner, Hahn, Elbau
+
|- valign=top
+
| TU Chemnitz
+
| stochastics (W3)
+
|
+
| offer. U. Freiberg, M. Schulte, A. Szkola, M. Kolb, M. Hutzenthaler, A. Kulik, S. Riedel
+
|
+
|- valign=top
+
| TU Chemnitz
+
| appl. anal (W2)
+
| 05.05.2017
+
| T. Lorenz, D. Breit, M. Bacak, T. Ullrich, O. Müller, W.-P. Düll, J. Brinkschulte, M. Pilca, B. Zwicknagl, M. Amann, J. Swoboda
+
|- valign=top
+
| U Cottbus
+
| algorithmics (W3)
+
| 15.11.2016
+
| van Stee, Schürman, Mnich, Averkov, Schaudt, Harks, Lutz, Thielen
+
|
+
|- valign=top
+
| U Cottbus
+
| opt. control (W3)
+
| 06.04.2017
+
| F.M. Hante, A. Kröner, G. Wachsmuth, K. Worthmann, T. Breiten, A. Zuyev
+
|
+
|}
+
  
==== D-F ====
 
  
{|
 
|+
 
| '''Institution'''
 
| '''Areas'''
 
| nowrap | '''Apply by'''
 
| '''Short lists/offers'''
 
|- valign=top
 
| TU Darmstadt
 
| alg. geo / number th. (W1)
 
| Mar 17, 2017
 
| campus visits completed
 
|- valign=top
 
| TU Dortmund
 
| analysis (W2)
 
| May 25, 2017
 
|
 
|- valign=top
 
| TU Dresden
 
| appl math (W1)
 
| Nov 3, 2016
 
|
 
|- valign=top
 
| U Düsseldorf
 
| stoch ana (W1)
 
| Jan 19, 2017
 
| interviews completed
 
|- valign=top
 
| U Erlangen
 
| appl math (W1/tt)
 
| June 30, 2017
 
| invitations by email
 
|}
 
  
==== G-L ====
 
  
{|
 
|+
 
| '''Institution'''
 
| '''Areas'''
 
| nowrap | '''Apply by'''
 
| '''Short lists/offers'''
 
|- valign=top
 
| U Gießen
 
| geometry (W3) <!-- - W3-Professur für Mathematik mit dem Schwerpunkt Geometrie -->
 
| Sep 30, 2016
 
| offer
 
|- valign=top
 
| U Gießen
 
| analysis (W2) <!-- W2-Professur für Mathematik mit dem Schwerpunkt Analysis (5 years) -->
 
| Sep 30, 2016
 
| offer
 
|- valign=top
 
| U Goettingen
 
| statistics (W1)
 
| Mar 30, 2016
 
| '''D. Rudolf'''
 
|- valign=top
 
| U Goettingen
 
| pure (W1)
 
| Mar 30, 2016
 
| <s>''Walpuski''</s>, ''Pogorzelski''
 
|- valign=top
 
| MLU Halle-Wittenberg
 
| functional analysis (W2)
 
| Sep 30, 2016
 
| shortlist
 
|- valign=top
 
| U Hamburg
 
| optim, approx (W1) <!-- JUNIOR PROFESSORSHIP (W1) IN OPTIMIZATION AND APPROXIMATION -->
 
| Jul 14, 2016
 
| offer
 
|- valign=top
 
| U Hamburg
 
| diff eq, dyn sys (W1) <!-- JUNIOR PROFESSORSHIP (W1) IN DIFFERENTIAL EQUATIONS AND DYNAMICAL SYSTEMS -->
 
| Jul 14, 2016
 
| <s>''Burtscher''</s>, ''Nobili''
 
|- valign=top
 
| U Hannover
 
| scientific computing (W2) <!-- W2 for scientific computing -->
 
| October, 2016
 
| Giesselmann, Engwer, Rademacher, Raetz, Borsche, Schedensack, '''Wick'''
 
|- valign=top
 
| U Koblenz-Landau
 
| modelling, optim (W3) <!-- Professur (W3) für Angewandte Mathematik -->
 
| Jul 22, 2016
 
| <s>''Krumke''</s>
 
|- valign=top
 
| [http://www.uni-konstanz.de/stellenangebote/stellenauswahl.php?seite=2017/024&id=3 U Konstanz]
 
| geometry (W3) <!-- W3-Professur für Geometrie im Schwerpunkt „Reelle Geometrie und Algebra“ -->
 
| Mar 31, 2017
 
| Averkov,Dykema, Juhnke-Kubitzke, Kleb, Lerario,  Michalek,  Rau,  Riener,  Unger
 
|- valign=top
 
| U Leipzig
 
| numerics (W1/tt)
 
| Oct 14, 2016
 
| interviews completed
 
|}
 
  
==== M-P ====
+
== Five Mistakes Beginners Make When Entering the Crypto Market ==
  
{|
+
Getting a first-time experience on the crypto market can be both thrilling and confusing at the same time. A lot of people are attracted by the promise of huge profits and a new form of financial freedom daily. However, when it comes to crypto, it is not a scheme that helps you become rich in a short time. Mistakes are near-certain when you are new. The trick here lies in knowing what those pitfalls are, so that you may not fall into them.
|+
+
These are some of the five typical mistakes that newcomers can fall into when entering the world of crypto use and ways to avoid them.
| '''Institution'''
+
| '''Areas'''
+
| nowrap | '''Apply by'''
+
| '''Short lists/offers'''
+
|- valign=top
+
| U Marburg
+
| numerics (W2)
+
| Mar 24, 2017
+
| Gauckler, Giesselmann, Gallist, Schedensack, Ehler,  Feischl
+
|- valign=top
+
| TU Munich
+
| analysis and modelling (W3) <!-- Full Professor in Analysis and Modelling -->
+
| May 28, 2017
+
|
+
|- valign=top
+
| U Munich
+
| applied (W3)
+
| April 7, 2017
+
|
+
|- valign=top
+
| U Münster
+
| applied math (W1) <!-- Professur (W1) für Angewandte Mathematik -->
+
| Jul 6, 2016
+
| Hosseini, Lamacz, <s>''Rüland''</s>, ''Schedensack'', Schubert, Smetana, Zhigun
+
|- valign=top
+
| U Münster
+
| theoretical math (W1) <!-- Professur (W1) für Theoretische Mathematik -->
+
| Jul 6, 2016
+
| Anbar, Biedermann, Pabinik, Shaw, Strung
+
|
+
|- valign=top
+
| U Münster
+
| applied math (W2) <!-- Professur (W2) für Angewandte Mathematik -->
+
| Sep 30, 2016
+
| <s>''Rüland''</s>, '''Seis'''
+
|- valign=top
+
| U Münster
+
| theoretical math (W2) <!-- Professur (W2) für Theoretische Mathematik -->
+
| Oct 15, 2016
+
| campus visits completed
+
|- valign=top
+
| U Münster
+
| math. opt. (W1)
+
| April 15, 2017
+
| interviews completed
+
|- valign=top
+
| U Osnabrück
+
| appl anal (W3)
+
| Jun 5, 2017
+
|
+
|- valign=top
+
| U Paderborn
+
| appl math (W1)
+
| Jan 2, 2017
+
|
+
|}
+
  
==== R-Z ====
+
'''Not Doing Enough Research'''
  
{|
+
Probably one of the largest pitfalls of any new crypto investor is doing so before knowing what it is they are buying. Crypto is not a regular stock or bond. Often, each coin or token can have its purpose, tech, and risks.
|+
+
|'''Institution'''
+
| '''Areas'''
+
| nowrap | '''Apply by'''
+
| '''Short lists/offers'''
+
|- valign=top
+
| U Saarbrücken
+
| appl. math. (W1 tt)
+
| May 26, 2017
+
|- valign=top
+
| U Trier
+
| numerics (W3)
+
|Oct , 2016
+
| offer
+
|- valign=top
+
| U Ulm
+
| applied analysis (W3) <!-- W3-Professur (mit Leitungsfunktion) für Angewandte Analysis  -->
+
| March 24, 2017
+
| Bella, Chen, Dirr, Herr, Schikorra, Wiedemann, Winkler, Ziemer, Zwicknagl
+
|- valign=top
+
| U Würzburg
+
| analysis (W3) <!-- Universitätsprofessorin/Universitätsprofessor für Analysis (Besoldungsgruppe W3) -->
+
|Oct 7, 2016
+
|}
+
  
=== Other temporary positions ===
+
Sometimes, a newbie buys a coin solely because it is gaining popularity, or because the person on social media told them that this is the next big thing. It is a quick formula to blow away money. You must learn about the project of the crypto, its team, what it is being used for, and where it fits into the larger market.
  
{|
+
Good sources of information, such as TimesCrypto are good for those who are new to it. They share clear news and thoughts that will be useful in understanding the basics and keeping you posted about the vital changes in the crypto ecosystem.
|+
+
| '''Institution'''
+
| '''Areas'''
+
| '''Type'''
+
| '''Apply by'''
+
| '''Short lists/offers'''
+
|
+
|- valign=top
+
| [http://www.igdk.eu/IGDK1754/OpenPositions TU Munich]
+
| pde num-analysis appl.math
+
| PostDoc Position
+
| Oct 01, 2016
+
|
+
|- valign=top
+
| [http://www.igdk.eu/IGDK1754/OpenPositions TU Munich]
+
| pde num-analysis appl.math
+
| PhD Thesis
+
| Sep 01, 2016
+
|
+
|
+
|- valign=top
+
| [https://www.uni-goettingen.de/en/368079.html U Goettingen]
+
| number theory, group theory
+
| Postdoc (2)
+
| Dec 16, 2016
+
|
+
|- valign=top
+
| [https://www.uni-goettingen.de/en/368079.html U Goettingen]
+
| number theory, group theory
+
| scholarship for a PhD
+
| Dec 16, 2016
+
|
+
|
+
|}
+
  
== Rest of the World ==
+
'''Falling for Scams and Fake Promises'''
  
=== Long-term positions ===
+
Scammers are interested in the crypto market as it is not yet regulated and is relatively new. Fake giveaways, pump-and-dump, and phishing are common for beginners.
  
{|
+
When something sounds like a deal too good to be true, then that is probably true. Never click on a suspicious link, do not give your keys to anyone, and under no circumstances send your crypto to any person promising you enormous profits.
|+
+
| '''Country'''
+
| '''Institution'''
+
| '''Areas'''
+
| '''Apply by'''
+
| '''Short lists and offers'''
+
  
 +
Once more, it is always good to keep yourself posted about scams by reading trusted news sources such as TimesCrypto and secure your investment.
  
|
+
'''Ignoring the Importance of Security'''
|- valign=top
+
| Australia
+
| [http://jobs.uq.edu.au/caw/en/job/500734/lecturersenior-lecturer-in-mathematics University of Queensland]
+
| all
+
| July 16, 2017
+
|
+
|- valign=top
+
| Austria
+
| [https://tiss.tuwien.ac.at/mbl/blatt_struktur/anzeigen/10266#p115.1 TU Wien]
+
| Differential geometry (t)
+
| April 26, 2017
+
|
+
|- valign=top
+
| Austria
+
| [https://tiss.tuwien.ac.at/mbl/blatt_struktur/anzeigen/10266#p115.2 TU Wien]
+
| Geometric analysis (t)
+
| April 26, 2017
+
|
+
|
+
|- valign=top
+
| Austria
+
| [https://univis.univie.ac.at/ausschreibungstellensuche/flow/bew_ausschreibung-flow;jsessionid=A07F1801DCA30B0CABA9550CDC932736?_flowExecutionKey=_cCE8F4CCC-A8F7-E5DD-DD9A-DC159A12C310_k267E4121-A9E8-787E-05BD-90AEEF86E7EF&tid=60669.28&_language=en U Vienna]
+
| Analysis & Geometry (tt)
+
| Dec 31, 2016
+
| filled
+
|
+
|
+
|- valign=top
+
| Austria
+
| [http://personalwesen.univie.ac.at/fuer-mitarbeiterinnen/professorinnen/job/english/singleview/article/at-the-faculty-of-mathematics-of-the-university-of-vienna-the-position-of-a-university-professor-of/?tx_ttnews U Vienna]
+
| Algebra & Number Theory (t)
+
| Mar 31, 2017
+
|
+
|
+
|- valign=top
+
| Chile
+
| [http://www.mat.uc.cl/noticias/2016-07-06/tenure-track-position-at-departamento-de-matemticas-pontificia-universidad-catlica-de-chile.html PUC Chile]
+
| Mathematics
+
| Nov 15, 2016
+
|        [https://sites.google.com/site/mircpetrache/home Mircea Petrache]
+
|
+
|- valign=top
+
  
| México
+
Most newbies do not realize the importance of security in this ''[http://timescrypto.com crypto]'' world. In contrast to traditional banks, you have the responsibility for your funds. In case you lose your keys or are hacked off, customer service is nowhere to come to the rescue.
| [http://www.ccadet.unam.mx/contenido/CONVOCATORIA_NANOFABRICACION_2017.pdf CCADET UNAM]
+
| Researcher in Advanced Nano Manufacturing
+
| Mar 24, 2017
+
|      |
+
|
+
|- valign=top
+
| Ireland
+
| [https://www.maynoothuniversity.ie/human-resources/vacancies/lecturer-mathematics-department-mathematics-statistics  Department of Mathematics & Statistics, Maynooth University]
+
| Lecturership in Mathematics
+
| May 21st 2017
+
| Interviews: June 19th 2017
+
|
+
|- valign=top
+
| Netherlands
+
| University of Gronigen
+
| Analysis (tt)
+
| Feb 1, 2017
+
| '''Alden Waters'''
+
|
+
|-valign=top
+
|UK
+
|[http://www.maths.ed.ac.uk/school-of-mathematics/jobs/lectureships-in-algebra-geometry-topology-and-rela U Edinburgh]
+
|2 lectureships in Algebra, Geometry & Topology and Related Fields
+
|Nov 2, 2016
+
|
+
|
+
|-valign=top
+
|UK
+
| Exeter U
+
| Senior Lecturer in Mathematics
+
|Dec 15, 2016
+
| Invitations sent
+
|
+
|
+
|-valign=top
+
|UK
+
| Manchester U
+
| Lecturer, Senior Lecturer or Reader in Pure Mathematics
+
|Feb 28, 2017
+
| Invitations sent
+
  
|}
+
There should also be two-factor authentication, and use reputable wallets. Keep your crypto off exchanges as little as possible, and bigger quantities may also be stored in hardware wallets.
  
=== Temporary positions ===
+
Security is something everyone should consider seriously, but it is what newcomers often learn by trial and error.
  
Please do not list doctoral positions.
+
'''Chasing Quick Profits'''
  
{|
+
The crypto market is dynamic, and the news about overnight millionaires is really tempting to make easy money.
|+
+
| '''Country'''
+
| '''Institution'''
+
| '''Areas'''
+
| '''Type'''
+
| '''Apply by'''
+
| '''Short lists and offers'''
+
|
+
  
|- valign=top
+
Investors who have a bit of crypto research under their belt and hold their investments over time fare better. By reading crypto news regularly, you will be able to differentiate between real trends and hype and avoid chain-long moves.
| Australia
+
| [http://jobs.uq.edu.au/caw/en/job/500622/lecturer-in-mathematics University of Queensland]
+
| all
+
| 3 years
+
| June 29, 2017
+
  
|- valign=top
+
'''Overlooking Market Volatility'''
| Austria
+
| [http://jobs.uni-graz.at/en/MB/75/99/3439 Uni Graz]
+
| stochastic
+
| University Assistant with doctorate
+
| April 5, 2017
+
  
|- valign=top
+
The cryptocurrency market is not a safe investment unless you are willing to accept the big price fluctuations. Cryptocurrencies (Bitcoin, Ethereum, and the like) may experience a growth or decline of 10 percent or more in 24 hours. When this happens, the new players freak out and lose.
| Austria
+
| [http://jobs.uni-graz.at/en/MB/69/99/3394 Uni Graz]
+
| pde num-analysis appl.math
+
| University Assistant with doctorate in mathematical image processing and inverse problems
+
| April 5, 2017
+
| Alden Waters
+
  
|- valign=top
+
We can rest assured that it is okay that volatility is in the game. Keeping yourself updated with some credible sources like TimesCrypto would help you stay in perspective and make better decisions when things get turbulent in the markets.
| Austria
+
| [https://static.uni-graz.at/fileadmin/nawi-institute/Mathematik/files/Jobs/Postdoc_ERC_Kunisch_Juni2017.pdf Uni Graz]
+
| pde num-analysis appl.math
+
| PostDoc Position in the ERC Advanced Grant OCLOC
+
| Sep 15, 2017
+
  
|- valign=top
+
'''Why Following Crypto News Matters for Beginners'''
| Austria
+
| [https://static.uni-graz.at/fileadmin/nawi-institute/Mathematik/files/Jobs/Position_WP1.pdf MedUni Graz]
+
| pde num-analysis appl.math
+
| PhD Positions within BioTechMed ILEARNHEART
+
| Mar 05, 2017
+
  
|- valign=top
+
These are some of the pitfalls that should be avoided, and it is not always easy to do so, but one thing that you can apply is paying attention to the crypto news. The market is evolving very quickly, and new events can significantly affect your investment game.
| Austria
+
| [https://static.uni-graz.at/fileadmin/nawi-institute/Mathematik/files/Jobs/Position_WP2.pdf Uni Graz]
+
| pde num-analysis appl.math
+
| PhD Positions within BioTechMed ILEARNHEART
+
| Mar 05, 2017
+
  
|- valign=top
+
TimesCrypto is a reliable source of comprehensible and unbiased news about the launch of new coins, trends in the market, security issues, and regulatory reports. To newbies, such knowledge is priceless to acquire confidence and form wiser decisions in the crypto environment.
| Belgium
+
| [https://www.uantwerpen.be/nl/jobs/vacatures/ap/2017bapfwetef003/ U Antwerpen]
+
| num-analysis algorithms appl.math
+
| Postdoc researcher in Scientific Computing and algorithms for inverse problems
+
| Feb 2017
+
  
|- valign=top
+
'''Conclusion'''
| France
+
| [http://milyon.universite-lyon.fr/en/appels-doffres/contrats-post-doctoraux/2017-2019  The Excellence Laboratory Milyon]
+
| Mathematics and Fundamental Computer Science campaign
+
| six postdoctoral positions  with no teaching load
+
| January 16th 2017
+
  
|- valign=top
+
The world of crypto can be a scary place to enter, but understanding common mistakes you are likely to make allows you to take a step ahead of most beginner individuals. Make inquiries, be cautious, and think about security. And do not overlook such sources of trusted news like TimesCrypto.
| Luxembourg
+
The crypto market has gigantic enlargement potential, yet it takes patience, intelligence, good knowledge, not luck or hype. Skip the following five traps and you are bound to make a successful start in crypto investments.
| [http://goo.gl/Zf9fm6 University of Luxembourg]
+
| Geometry: representations of surface or hyperbolic groups, Hitchin or Anosov representations, higher Teichmüller theory, geometric structures on low-dimensional manifolds, metric and combinatorial considerations on moduli type spaces and the geometry of the mapping class group, etc
+
| Up to four 2-year postdoctoral positions, low teaching load
+
| January 30, 2017
+
  
|- valign=top
 
| Poland
 
| [http://www.euro-math-soc.eu/job/postdoctoral-position-erc-index-project Institute of Mathematics, Polish Academy of Sciences, Warsaw (IMPAN)]
 
| Analysis, geometry, topology
 
| Postdoctoral researcher in the ERC project INDEX
 
| Jan 31, 2017
 
  
  
|
 
|-valign=top
 
|UK
 
|[http://www.maths.ed.ac.uk/research/seggie-brown-bequest/fellowship-advertisement U Edinburgh]
 
|
 
|Seggie Brown Postdoctoral 
 
|Dec 2, 2016
 
|
 
|
 
|-valign=top
 
|UK
 
| Exeter U
 
| Dynamical systems
 
|P54647 Lecturer / Senior Lecturer in Mathematics (5y)
 
|Dec 15, 2016
 
| Invitations sent
 
|
 
|-valign=top
 
|Spain
 
|[http://www.bcamath.org/en/research/job BCAM - Basque Center for Applied Mathematics]
 
|Applied Statistics
 
|Postdoctoral Fellowship
 
|Sep 20, 2016
 
|
 
|-valign=top
 
|Spain
 
|[http://www.bcamath.org/en/research/job BCAM - Basque Center for Applied Mathematics]
 
|Machine Learning
 
|Postdoctoral Fellowship
 
|Sep 20, 2016
 
|
 
|-valign=top
 
|Spain
 
|[http://www.bcamath.org/en/research/job BCAM - Basque Center for Applied Mathematics]
 
|Modelling and Simulation in Life and Materials Sciences
 
|Postdoctoral Fellowship
 
|Sep 20, 2016
 
|
 
|-valign=top
 
|Spain
 
|[http://www.bcamath.org/en/research/job BCAM - Basque Center for Applied Mathematics]
 
|Statistical Physics
 
|Postdoctoral Fellowship
 
|Sep 20, 2016
 
|
 
|-valign=top
 
|Switzerland
 
|University of Zürich
 
|Pure Mathematics
 
|Lecturer (3-year Research position)
 
|Sep 30, 2016
 
|'''Xavier Ros-Oton''', Lei Zhao, Disheng Xu, Krzysztof Putyra, Marco Golla, Yohan Brunebarbe, Claudia Scheimbauer
 
|}
 
  
== Mathematics jobs sites ==
+
== '''Sensors: The Eyes and Ears of Modern Technology''' ==
 +
 
 +
Sensors are indispensable components in today’s electronic and automated systems, acting as the critical interface between the physical world and digital devices. They detect changes in the environment and convert these physical parameters into electrical signals that can be measured, processed, and analyzed. This article provides a comprehensive overview of sensors, explaining their working principles, types, applications, and the growing importance of sensors in various industries.
 +
 
 +
'''What Is a Sensor?'''
 +
 
 +
A sensor is a device that detects and responds to physical stimuli such as temperature, pressure, light, motion, or chemical composition. It translates these stimuli into readable signals, usually electrical, which can then be interpreted by electronic systems. Sensors serve as the fundamental building blocks for automation, control, and monitoring systems, enabling machines and devices to interact intelligently with their surroundings.
 +
 
 +
The core function of a sensor is to sense a specific physical quantity and convert it into a form that can be easily measured or recorded. This conversion process often involves transduction, where one form of energy is transformed into another. For example, a temperature sensor converts thermal energy into an electrical voltage or resistance change.
 +
 
 +
'''How Sensors Work'''
 +
 
 +
The operation of a sensor depends on the physical principle it exploits. Many ''[https://www.yy-ic.com/lccategory/sensor sensors]'' rely on changes in electrical properties such as resistance, capacitance, or inductance in response to environmental changes. Others use optical, acoustic, or chemical effects to detect stimuli.
 +
For instance, a thermistor changes its resistance with temperature variations, allowing temperature measurement. A photodiode generates current when exposed to light, enabling light intensity detection. Pressure sensors might use piezoelectric materials that produce voltage when mechanically stressed.
 +
 
 +
Once the sensor detects the physical change, it outputs an electrical signal proportional to the measured parameter. This signal can then be amplified, filtered, and processed by microcontrollers or other electronic circuits to perform specific functions or trigger actions.
 +
 
 +
'''Types of Sensors'''
 +
 
 +
Sensors come in a vast array of types, each designed to measure particular physical quantities. Temperature sensors, such as thermocouples and thermistors, monitor heat levels. Pressure sensors measure force exerted by gases or liquids. Proximity sensors detect the presence or absence of objects without physical contact.
 +
 
 +
Motion sensors, including accelerometers and gyroscopes, track movement and orientation. Light sensors measure illumination levels, while humidity sensors gauge moisture content in the air. Chemical sensors identify the presence of specific substances or gases.
 +
 
 +
Each sensor type has unique characteristics suited to different applications. Some sensors provide analog outputs, offering continuous measurement values, while others deliver digital signals for discrete detection.
 +
 
 +
'''Applications of Sensors'''
 +
 
 +
Sensors are integral to countless applications across diverse fields. In consumer electronics, sensors enable features like touchscreens, ambient light adjustment, and motion detection in smartphones and wearable devices. Automotive systems rely on sensors for engine management, safety features like airbags, and advanced driver-assistance systems.
 +
 
 +
Industrial automation uses sensors extensively for process control, quality assurance, and equipment monitoring. Sensors detect temperature, pressure, flow, and position to optimize manufacturing operations and ensure safety.
 +
 
 +
In healthcare, sensors monitor vital signs such as heart rate, blood pressure, and glucose levels, facilitating remote patient monitoring and diagnostics. Environmental monitoring employs sensors to track air and water quality, detect pollutants, and measure weather conditions.
 +
 
 +
The Internet of Things (IoT) revolution is heavily dependent on sensors to collect real-time data from connected devices, enabling smart homes, cities, and industries.
 +
 
 +
'''Choosing the Right Sensor'''
 +
 
 +
Selecting the appropriate sensor for a specific application requires careful consideration of several factors. Accuracy and sensitivity determine how precisely the sensor measures the desired parameter. Response time affects how quickly the sensor reacts to changes.
 +
 
 +
Environmental conditions such as temperature range, humidity, and exposure to chemicals influence sensor durability and performance. Power consumption is critical for battery-operated or remote devices.
 +
 
 +
Physical size and mounting options must align with the design constraints of the system. Additionally, the output type—analog or digital—should be compatible with the processing electronics.
 +
 
 +
Cost and availability also play a role, especially in large-scale deployments where budget constraints are significant.
 +
 
 +
'''Advantages and Challenges of Sensors'''
 +
 
 +
Sensors provide numerous benefits, including automation, improved safety, enhanced efficiency, and data-driven decision-making. They enable systems to operate autonomously and adapt to changing conditions without human intervention.
 +
 
 +
However, sensors also face challenges such as signal noise, calibration drift, and susceptibility to environmental interference. Ensuring sensor reliability and accuracy over time requires proper design, shielding, and maintenance.
 +
 
 +
Integration of multiple sensors in complex systems demands sophisticated data fusion techniques to interpret combined signals effectively.
 +
 
 +
'''Future Trends in Sensor Technology'''
 +
 
 +
Sensor technology continues to evolve rapidly, driven by advances in materials science, microfabrication, and wireless communication. Miniaturization has led to the development of microelectromechanical systems (MEMS) sensors that are compact, low-cost, and highly sensitive.
 +
 
 +
Smart sensors with built-in processing capabilities can perform data analysis locally, reducing the need for external computation and enabling faster responses. Wireless sensor networks facilitate distributed sensing over large areas, crucial for environmental monitoring and industrial IoT applications.
 +
 
 +
Emerging sensor types include biosensors for detecting biological markers and chemical sensors for environmental and security applications. Energy harvesting techniques are being integrated to power sensors autonomously, extending their operational life.
  
This section is for web sites that are specific to mathematics employment.  Do not list sites with general employment assistance or solicitations.
+
'''Conclusion'''
  
* [http://www.mathjobs.org MathJobs.org] &mdash; Our favorite!
+
Sensors are the vital link between the physical world and electronic systems, enabling intelligent interaction and automation across countless applications. Their ability to detect and convert physical phenomena into usable electrical signals underpins modern technology, from everyday gadgets to advanced industrial systems.
* [http://jobs.amstat.org/search/results/ American Statistical Association]
+
* [http://www.ams.org/eims/ AMS EIMS] &mdash; Employment Information in the Mathematical Sciences
+
* [http://www.ams.org/notices/ AMS Notices]
+
* [http://www.higheredjobs.com/faculty/search.cfm?JobCat=104 HigherEdJobs.com] &mdash; mathematics section
+
* [http://jobs.imstat.org/ Institute of Mathematical Statistics]
+
* [http://www.mathclassifieds.org/ MAA]
+
* [http://www.math-jobs.com/ Math-Jobs.com]
+
* [https://mathhire.org/jobs/academia/ mathhire.org: Jobs in Academia]
+
* [http://jobs.sciencecareers.org/jobs/mathematics/ Science Careers (AAAS)] &mdash; Mathematics jobs
+
* [http://sciencefacultyjobs.com/job-region/mathematics/ ScienceFacultyJobs.com] &mdash; Mathematics
+
* [http://jobs.siam.org/ SIAM Career Center]
+
* [http://chroniclevitae.com/job_search?job_search%5Bposition_type%5D=71 Vitae] &mdash; Mathematics jobs
+
* Australia: [http://www.austms.org.au/Jobs/Academic_listings.html AustMS Academic listings]
+
* Austria: [http://www.oemg.ac.at/Jobs/ ÖMG Jobbörse]
+
* Belgium: [http://bms.ulb.ac.be/cgi/jobs.php BMS Job page]
+
* Canada: [http://www.cms.math.ca/Employment/ CMS Employment Resources]
+
* Europe: [http://www.euro-math-soc.eu/jobs EMS Jobs]
+
* France: [http://postes.smai.emath.fr/ Concours MCF/PR] &mdash; Opération Postes
+
* Germany: [http://www.careerjet.de/mathematics-jobs.html Careerjet] &mdash; mathematics
+
* Germany: [http://de.gigajob.com/job/Mathematik.html Jobbörse Gigajob] &mdash; Jobs online
+
<!--*SITE DOWN India: [http://www.jobdistance.in/jobs/maths-jobs-India Mathematics Jobs India]-->
+
* Ireland: [http://www.maths.tcd.ie/pub/ims/jobs-ie/ Irish Mathematical Society] &mdash; jobs-ie
+
* Israel: [http://imu.org.il/inq-offers.html Israel Mathematical Union]
+
* Italy: [http://bandi.miur.it/jobs.php/public/cercaJobs 3-year assistant positions] and [http://bandi.miur.it/profcalls.php/public/cercaJobs professor positions] (in Italian)
+
* Japan: [http://jrecin.jst.go.jp/seek/SeekJorSearch?fn=1&ln=1&bgCode1=00003&smCode1=00001 JREC-IN] &mdash; Mathematics
+
* South Dakota: [http://yourfuture.sdbor.edu SD Board of Regents] &mdash; Search Postings: math
+
* Scandinavia: [http://www.maths.lth.se/nordic/ Nordic-Math-Job]
+
* Spain: [http://www.rsme.es/comis/prof/ RSME.es] &mdash; Oportunidades profesionales
+
* Switzerland: [http://www.math.ch/jobs/ Swiss Mathematical Society] &mdash; Jobs
+
* Turkey: [http://www.turkmath.org/beta/ilanlar.php turkmath.org] &mdash; Mathematics jobs
+
* UK: [http://www.jobs.ac.uk/jobs/mathematics-and-statistics jobs.ac.uk] &mdash; Mathematics and Statistics;[http://jobs.livecareer.co.uk/education/maths-teacher LiveCareer]&mdash; Math teachers;
+
  
== Other disciplines (wikis and job rumor sites) ==
+
Understanding the principles, types, and applications of sensors empowers engineers, designers, and innovators to harness their potential effectively. For those seeking reliable and diverse sensor components, exploring specialized suppliers can provide access to high-quality products tailored to specific needs.
  
* [http://www.astrobetter.com/wiki/tiki-index.php?page=Rumor+Mill Astrophysics Jobs Rumor Wiki]
+
As sensor technology advances, it will continue to drive innovation, efficiency, and connectivity in an increasingly digital and automated world.
* [https://cmamorumor.wikispaces.com/JobPostings2016 CM/AMO Jobs Rumor Mill]
+
* [http://www.bluwiki.com/go/Econjobmarket Economics Job Market Wiki]
+
* [http://www.freewebs.com/heprumor/ Experimental High Energy Physics Job Rumor Mill]
+
* [http://phylo.info/jobs Philosophy Job Market Wiki]
+
* [http://www.wikijob.co.uk Quant Job Wiki]
+
* [http://particle.physics.ucdavis.edu/rumor/doku.php Theoretical Particle Physics Jobs Rumor Mill]
+

Latest revision as of 06:38, 17 October 2025

Contents

[edit] Chip Find: Полное глобальное руководство по верифицированному поиску полупроводников, перекрёстному сопоставлению и управлению жизненным циклом

Современная инженерия опирается на точный поиск компонентов. Термин найти чип обозначает дисциплину, объединяющую автоматизацию проектирования электроники, аналитические данные и контроль закупок в единую систему. К 2025 году успешные конструкторские компании рассматривают подбор микросхем как управляемый инженерный процесс, гарантирующий, что каждое устройство — от малошумящего усилителя до беспроводного MCU — имеет подтверждённое происхождение.

Для справочного контекста см. статью Интегральная схема. Настоящий материал переносит теорию в плоскость практики: проверенные технические паспорта, алгоритмы перекрёстного сопоставления, оценку надёжности и многопоставочное управление жизненным циклом.

[edit] Проверенный перечень моделей

Производитель / Семейство Представительные модели Ключевые особенности Основные области применения
Analog Devices — прецизионные АЦП AD4130-8BCPZ; AD4116, AD4003 24-битный ΣΔ-АЦП с встроенным ПГУ и буфером опорного напряжения, сверхнизкое энергопотребление и утечка. Промышленные измерительные системы, весы, медицинские датчики
Texas Instruments — электронный предохранитель (eFuse) TPS25944ARVCR; TPS2595, TPS25982 Регулируемый предел тока, блокировка обратного тока, быстрое срабатывание при КЗ, тепловая защита с автоперезапуском. Автомобильные шлюзы, промышленные контроллеры
STMicroelectronics — беспроводной MCU STM32WB55RGV6; STM32WB10CC Двухъядерная архитектура M4/M0+, Bluetooth 5 и IEEE 802.15.4, безопасная загрузка и обновление ПО по воздуху. IoT-узлы, носимые устройства, автоматизация зданий
Microchip — контроллер и трансивер CAN MCP25625-E/SN; MCP2562FD Интегрированный контроллер CAN 2.0B и PHY через SPI; диагностические регистры, счётчики ошибок, режим сна. Авто-ЭБУ, робототехника, промышленные сети
Infineon — умный высокобоковой ключ BTS50085-1TMA; BTS5010-1EKA Работа при напряжении до 42 В, контроль тока и тепловая защита; устойчивость к КЗ и диагностическая обратная связь. Автомобильное освещение, соленоиды, замена реле
Renesas — ультра-малопотребляющий MCU R7FA2L1AB2DFP; RA2E2 Ядро Arm M23 с частотой 48 МГц, ток покоя в нанамперах, аппаратное шифрование AES/SHA, компактный QFN-корпус. Батарейные датчики, умный дом, портативная электроника
NXP — защищённый элемент EdgeLock SE050C2; SE051H Безопасность EAL6+, аппаратная криптография (ECC/RSA/AES), I²C-интерфейс для TLS/аттестации. Аутентификация, платёжные системы, промышленный IoT
Silicon Labs — энергоэффективный MCU EFM32PG22C200F512IM40; EFM32PG24 Ядро M33 до 76,8 МГц, ток сна менее 1 мкА, встроенные операционные усилители и 12-битный АЦП. Счётчики энергии, портативная медицина, носимые устройства
ROHM — двойной малошумящий ОУ BA4560F-E2; BA4558F Шум 4 нВ/√Гц, полоса 10 МГц, стабильность при единичном усилении; питание ±4…±15 В. Аудиопредусилители, активные фильтры

[edit] Введение — почему точный поиск чипов имеет значение

Полупроводниковый рынок середины 2020-х изобилен и одновременно нестабилен. Десятки тысяч активных позиций сосуществуют с еженедельными уведомлениями о снятии с производства. Инженеры не могут полагаться на интуицию: необходимо количественно подтверждать эквивалентность, проверять жизненный цикл и гарантировать, что замена сохраняет характеристики и соответствие нормативам.

Надёжный процесс базируется на четырёх столпах: точность данных, прозрачность межпоставщиков, воспроизводимость характеристик и устойчивость жизненного цикла.

[edit] Методики оценки и калибровки

После выбора компонентов инженер должен проверить допуски, температурные коэффициенты и реальные характеристики в составе узла. Каждая проверка документируется в лабораторном журнале и хранится рядом с исходным листом спецификаций. Используются три уровня проверки:

  • Лабораторная: измерение параметров отдельных ИС и пассивных элементов в диапазоне −40…+125 °C.
  • Стендовая: проверка под нагрузкой и в типовых электрических схемах.
  • Эксплуатационная: сбор данных с пилотных образцов, сравнение статистики с эталоном.

[edit] Сравнительный анализ моделей и заменителей

[edit] Технические характеристики

Модель Разрядность / Архитектура Питание (В) Потребление (мА) Темп. диапазон (°C) Примечания
AD4130-8BCPZ 24 бит ΣΔ ADC 2.7–3.6 0.29 −40…+125 Высокоточный, низкий шум, промышленный класс
TPS25944ARVCR eFuse 2.7–18 до 100 −40…+125 Защита от КЗ, управление током
STM32WB55RGV6 ARM M4/M0+ 1.8–3.6 8 −40…+85 BLE 5, 802.15.4, двухъядерный
MCP25625-E/SN CAN Ctrl + PHY 4.5–5.5 15 −40…+125 Интегрированный SPI интерфейс
BTS50085-1TMA Smart Switch 4.5–42 −40…+150 Высокое напряжение, диагностика
R7FA2L1AB2DFP ARM M23 1.6–3.6 0.5 −40…+105 Низкое потребление, AES аппаратно
SE050C2 Secure Element 1.62–3.6 −40…+90 Криптография ECC/RSA
EFM32PG22C200F512IM40 ARM M33 1.7–3.8 0.8 −40…+125 Энергосберегающий, периферия в корпусе
BA4560F-E2 Dual OpAmp ±4–15 −40…+85 Низкий шум, аудио/прецизионный

[edit] Ресурсы для поиска и перекрёстного сопоставления

[edit] Заключение

Грамотный подход к поиску и анализу полупроводниковых компонентов требует не только технической экспертизы, но и стратегического мышления. Используйте автоматизированные инструменты подбора, сопоставления и проверки. Заменители следует подбирать с точной верификацией всех параметров, чтобы избежать функциональных отклонений и логистических сбоев.

[edit] См. также


[edit] Understanding Amplifier IC Audio: Power, Precision, and Performance

In the world of electronics, few components shape our listening experience as much as the amplifier IC audio chip. These small yet powerful integrated circuits are the core of modern sound systems — from compact Bluetooth speakers to professional-grade studio amplifiers.

According to Wikipedia, an audio amplifier is a device that increases the power of audio signals, driving loudspeakers or headphones without distortion. In integrated circuit form, they deliver excellent efficiency, low heat, and compact performance ideal for both consumer and industrial audio applications.

[edit] What Is an Amplifier IC Audio?

An amplifier IC audio (integrated circuit audio amplifier) is a chip that takes a low-level audio input signal and boosts it into a powerful output capable of driving speakers. Unlike discrete amplifiers built from individual transistors and resistors, amplifier ICs integrate all stages — input, voltage gain, and output — into one silicon package.

This makes them smaller, more reliable, and easier to design into any sound system.

[edit] Common Audio Amplifier IC Models

Here are some widely used amplifier IC audio models that engineers and hobbyists depend on:

Model Number Description Power Output Common Application
LM386 Low-voltage audio amplifier 0.5 W Portable radios, toys
TDA2030A Hi-Fi class AB amplifier 14 W Home audio, subwoofers
PAM8403 Class D stereo amplifier 3 W per channel Bluetooth speakers
LM4871 Bridge-connected audio amplifier 3 W Laptops, multimedia devices
TDA7294 High-power audio amplifier 100 W Studio amplifiers
MAX9744 Class D digital amplifier with I²C 20 W Embedded systems
TPA3116D2 Efficient class D amplifier 50 W Car audio systems
NJM2073 Dual audio amplifier 1.2 W Intercoms, TVs

These models represent the diversity of amplifier ICs available — from low-voltage mini amps to powerful integrated modules.

[edit] How Amplifier IC Audio Chips Work

Amplifier ICs use internal transistor networks and feedback mechanisms to increase signal amplitude without altering waveform characteristics. The process involves:

  • Input stage: Receives the low-level signal.
  • Voltage gain stage: Amplifies the signal strength.
  • Output stage: Drives the speaker or external load.
  • Feedback loop: Maintains signal fidelity and reduces distortion.

Some advanced ICs, such as the TPA3116D2, integrate digital PWM (Pulse Width Modulation) technology to achieve over 90% efficiency with minimal heat loss.

[edit] Technical Advantages

Modern amplifier ICs offer multiple performance benefits:

Feature Benefit
High SNR (Signal-to-Noise Ratio) Cleaner, clearer sound
Low THD (Total Harmonic Distortion) Natural audio reproduction
Thermal shutdown protection Prevents damage from overheating
Short-circuit protection Ensures safe operation
Compact package Enables portable and efficient design

These features make amplifier ICs an indispensable choice for compact and efficient sound systems.

[edit] Applications of Amplifier ICs

Amplifier IC audio components are everywhere:

  1. Consumer Electronics: Used in TVs, laptops, radios, and Bluetooth speakers.
  2. Automotive Systems: Found in infotainment units and dashboard sound modules.
  3. Industrial Devices: Public address systems, intercoms, and signal processing.
  4. Professional Audio Equipment: Mixers, studio monitors, and amplifiers.
  5. Smart IoT Devices: Voice assistants and wireless communication modules.

Their combination of efficiency, low power draw, and minimal distortion makes them ideal for modern designs.

[edit] Design and Integration Considerations

When integrating amplifier ICs into a system, designers should pay attention to:

  • Power supply filtering: To reduce hum or ripple noise.
  • PCB layout: Keeping analog and digital grounds separate.
  • Heat management: Using proper heat sinks or copper pours.
  • Load impedance matching: To optimize power transfer.
  • Decoupling capacitors: For stable supply voltage.

Good design practices directly influence sound clarity and durability.

[edit] Why Choose YY-IC

YY-IC provides a global inventory of audio amplifier ICs from major semiconductor manufacturers. With a large selection of parts like TDA2030A, PAM8403, and TPA3116D2, YY-IC ensures customers get reliable, authentic, and cost-effective components for every design need.

Benefits of sourcing from YY-IC include:

  • Verified and authentic ICs from trusted brands
  • Comprehensive datasheets and product documentation
  • Fast worldwide delivery and professional sourcing support
  • Competitive pricing for both small and bulk orders

Whether you're an electronics hobbyist or an industrial buyer, YY-IC simplifies your component procurement process.

[edit] Future Trends in Audio Amplifier ICs

Next-generation amplifier ICs are combining AI-driven sound processing, Bluetooth integration, and energy-efficient Class D topologies into smaller, multi-functional chips. We’re seeing trends like:

  • Integrated DSP (Digital Signal Processing) for adaptive EQ
  • AI-based noise cancellation and voice optimization
  • Ultra-low-power Class D amplifiers for IoT
  • High-fidelity, miniaturized modules for wearable devices

These innovations continue to push the limits of compact, high-performance sound amplification.

[edit] Final Thoughts

The amplifier IC audio chip continues to be a vital component in modern electronics, delivering precision, clarity, and power in every application — from simple speakers to smart, networked devices. For engineers and product designers, sourcing quality ICs from YY-IC ensures consistency, reliability, and long-term performance in every circuit.



[edit] Five Mistakes Beginners Make When Entering the Crypto Market

Getting a first-time experience on the crypto market can be both thrilling and confusing at the same time. A lot of people are attracted by the promise of huge profits and a new form of financial freedom daily. However, when it comes to crypto, it is not a scheme that helps you become rich in a short time. Mistakes are near-certain when you are new. The trick here lies in knowing what those pitfalls are, so that you may not fall into them. These are some of the five typical mistakes that newcomers can fall into when entering the world of crypto use and ways to avoid them.

Not Doing Enough Research

Probably one of the largest pitfalls of any new crypto investor is doing so before knowing what it is they are buying. Crypto is not a regular stock or bond. Often, each coin or token can have its purpose, tech, and risks.

Sometimes, a newbie buys a coin solely because it is gaining popularity, or because the person on social media told them that this is the next big thing. It is a quick formula to blow away money. You must learn about the project of the crypto, its team, what it is being used for, and where it fits into the larger market.

Good sources of information, such as TimesCrypto are good for those who are new to it. They share clear news and thoughts that will be useful in understanding the basics and keeping you posted about the vital changes in the crypto ecosystem.

Falling for Scams and Fake Promises

Scammers are interested in the crypto market as it is not yet regulated and is relatively new. Fake giveaways, pump-and-dump, and phishing are common for beginners.

When something sounds like a deal too good to be true, then that is probably true. Never click on a suspicious link, do not give your keys to anyone, and under no circumstances send your crypto to any person promising you enormous profits.

Once more, it is always good to keep yourself posted about scams by reading trusted news sources such as TimesCrypto and secure your investment.

Ignoring the Importance of Security

Most newbies do not realize the importance of security in this crypto world. In contrast to traditional banks, you have the responsibility for your funds. In case you lose your keys or are hacked off, customer service is nowhere to come to the rescue.

There should also be two-factor authentication, and use reputable wallets. Keep your crypto off exchanges as little as possible, and bigger quantities may also be stored in hardware wallets.

Security is something everyone should consider seriously, but it is what newcomers often learn by trial and error.

Chasing Quick Profits

The crypto market is dynamic, and the news about overnight millionaires is really tempting to make easy money.

Investors who have a bit of crypto research under their belt and hold their investments over time fare better. By reading crypto news regularly, you will be able to differentiate between real trends and hype and avoid chain-long moves.

Overlooking Market Volatility

The cryptocurrency market is not a safe investment unless you are willing to accept the big price fluctuations. Cryptocurrencies (Bitcoin, Ethereum, and the like) may experience a growth or decline of 10 percent or more in 24 hours. When this happens, the new players freak out and lose.

We can rest assured that it is okay that volatility is in the game. Keeping yourself updated with some credible sources like TimesCrypto would help you stay in perspective and make better decisions when things get turbulent in the markets.

Why Following Crypto News Matters for Beginners

These are some of the pitfalls that should be avoided, and it is not always easy to do so, but one thing that you can apply is paying attention to the crypto news. The market is evolving very quickly, and new events can significantly affect your investment game.

TimesCrypto is a reliable source of comprehensible and unbiased news about the launch of new coins, trends in the market, security issues, and regulatory reports. To newbies, such knowledge is priceless to acquire confidence and form wiser decisions in the crypto environment.

Conclusion

The world of crypto can be a scary place to enter, but understanding common mistakes you are likely to make allows you to take a step ahead of most beginner individuals. Make inquiries, be cautious, and think about security. And do not overlook such sources of trusted news like TimesCrypto. The crypto market has gigantic enlargement potential, yet it takes patience, intelligence, good knowledge, not luck or hype. Skip the following five traps and you are bound to make a successful start in crypto investments.



[edit] Sensors: The Eyes and Ears of Modern Technology

Sensors are indispensable components in today’s electronic and automated systems, acting as the critical interface between the physical world and digital devices. They detect changes in the environment and convert these physical parameters into electrical signals that can be measured, processed, and analyzed. This article provides a comprehensive overview of sensors, explaining their working principles, types, applications, and the growing importance of sensors in various industries.

What Is a Sensor?

A sensor is a device that detects and responds to physical stimuli such as temperature, pressure, light, motion, or chemical composition. It translates these stimuli into readable signals, usually electrical, which can then be interpreted by electronic systems. Sensors serve as the fundamental building blocks for automation, control, and monitoring systems, enabling machines and devices to interact intelligently with their surroundings.

The core function of a sensor is to sense a specific physical quantity and convert it into a form that can be easily measured or recorded. This conversion process often involves transduction, where one form of energy is transformed into another. For example, a temperature sensor converts thermal energy into an electrical voltage or resistance change.

How Sensors Work

The operation of a sensor depends on the physical principle it exploits. Many sensors rely on changes in electrical properties such as resistance, capacitance, or inductance in response to environmental changes. Others use optical, acoustic, or chemical effects to detect stimuli. For instance, a thermistor changes its resistance with temperature variations, allowing temperature measurement. A photodiode generates current when exposed to light, enabling light intensity detection. Pressure sensors might use piezoelectric materials that produce voltage when mechanically stressed.

Once the sensor detects the physical change, it outputs an electrical signal proportional to the measured parameter. This signal can then be amplified, filtered, and processed by microcontrollers or other electronic circuits to perform specific functions or trigger actions.

Types of Sensors

Sensors come in a vast array of types, each designed to measure particular physical quantities. Temperature sensors, such as thermocouples and thermistors, monitor heat levels. Pressure sensors measure force exerted by gases or liquids. Proximity sensors detect the presence or absence of objects without physical contact.

Motion sensors, including accelerometers and gyroscopes, track movement and orientation. Light sensors measure illumination levels, while humidity sensors gauge moisture content in the air. Chemical sensors identify the presence of specific substances or gases.

Each sensor type has unique characteristics suited to different applications. Some sensors provide analog outputs, offering continuous measurement values, while others deliver digital signals for discrete detection.

Applications of Sensors

Sensors are integral to countless applications across diverse fields. In consumer electronics, sensors enable features like touchscreens, ambient light adjustment, and motion detection in smartphones and wearable devices. Automotive systems rely on sensors for engine management, safety features like airbags, and advanced driver-assistance systems.

Industrial automation uses sensors extensively for process control, quality assurance, and equipment monitoring. Sensors detect temperature, pressure, flow, and position to optimize manufacturing operations and ensure safety.

In healthcare, sensors monitor vital signs such as heart rate, blood pressure, and glucose levels, facilitating remote patient monitoring and diagnostics. Environmental monitoring employs sensors to track air and water quality, detect pollutants, and measure weather conditions.

The Internet of Things (IoT) revolution is heavily dependent on sensors to collect real-time data from connected devices, enabling smart homes, cities, and industries.

Choosing the Right Sensor

Selecting the appropriate sensor for a specific application requires careful consideration of several factors. Accuracy and sensitivity determine how precisely the sensor measures the desired parameter. Response time affects how quickly the sensor reacts to changes.

Environmental conditions such as temperature range, humidity, and exposure to chemicals influence sensor durability and performance. Power consumption is critical for battery-operated or remote devices.

Physical size and mounting options must align with the design constraints of the system. Additionally, the output type—analog or digital—should be compatible with the processing electronics.

Cost and availability also play a role, especially in large-scale deployments where budget constraints are significant.

Advantages and Challenges of Sensors

Sensors provide numerous benefits, including automation, improved safety, enhanced efficiency, and data-driven decision-making. They enable systems to operate autonomously and adapt to changing conditions without human intervention.

However, sensors also face challenges such as signal noise, calibration drift, and susceptibility to environmental interference. Ensuring sensor reliability and accuracy over time requires proper design, shielding, and maintenance.

Integration of multiple sensors in complex systems demands sophisticated data fusion techniques to interpret combined signals effectively.

Future Trends in Sensor Technology

Sensor technology continues to evolve rapidly, driven by advances in materials science, microfabrication, and wireless communication. Miniaturization has led to the development of microelectromechanical systems (MEMS) sensors that are compact, low-cost, and highly sensitive.

Smart sensors with built-in processing capabilities can perform data analysis locally, reducing the need for external computation and enabling faster responses. Wireless sensor networks facilitate distributed sensing over large areas, crucial for environmental monitoring and industrial IoT applications.

Emerging sensor types include biosensors for detecting biological markers and chemical sensors for environmental and security applications. Energy harvesting techniques are being integrated to power sensors autonomously, extending their operational life.

Conclusion

Sensors are the vital link between the physical world and electronic systems, enabling intelligent interaction and automation across countless applications. Their ability to detect and convert physical phenomena into usable electrical signals underpins modern technology, from everyday gadgets to advanced industrial systems.

Understanding the principles, types, and applications of sensors empowers engineers, designers, and innovators to harness their potential effectively. For those seeking reliable and diverse sensor components, exploring specialized suppliers can provide access to high-quality products tailored to specific needs.

As sensor technology advances, it will continue to drive innovation, efficiency, and connectivity in an increasingly digital and automated world.