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Web Appendix
Online Appendix for “Productivity Shocks, Long-Term Contracts and Earnings Dynamics” Neele Balke∗, Thibaut Lamadon† September 25, 2020 W1 Model web appendix........................ W1 W1.1 Properties of equilibrium functions............ W1 W1.2 Existence of equilibrium................. W9 W2 Identification web appendix.................... W23 W2.1 Data............................ W24 W2.2 Identifying the choice probabilities............ W24 W2.3 Identifying the model parameters............ W26 W2.4 Proofs........................... W27 W3 Data web appendix......................... W43 W3.1 Institutional background................. W43 W3.2 Moments description................... W45 W4 Estimation web appendix..................... W46 W4.1 Numerical solution to the model............. W47 W4.2 Simulating moments.................... W48 W4.3 Optimization........................ W48 W4.4 Computing standard errors................ W49 ∗Kenneth C. Griffin Dept. of Economics, University of Chicago, [email protected]. †Kenneth C. Griffin Dept. of Economics, University of Chicago, [email protected], IFAU, IFS and NBER. W1 Model web appendix W1.1 Properties of equilibrium functions In this section, we define the set J of profit functions of the firm and then, taking an arbitrary J ∈ J as given, derive properties of the market tightness, job finding probability, and search and effort policy functions in equilibrium. Definition W1 (Definition of J). Let J be defined as the set of firms’ value functions J : S × V → R such that (J1) For all (x, z) ∈ S and all V1,V2 ∈ V with V1 ≤ V2, the difference J(x, z, V2)− J(x, z, V1) is bounded by −BJ (V2 − V1) and −BJ (V2 − V1) where BJ ≥ BJ > 0 are some constants. (J2) For all (x, z, V ) ∈ S × V, J(x, z, V ) is bounded in [J, J] where J = f(x,z)−u−1 v+c(e)−βv f(x,z)−u−1 v+c(e)−βv 1−β and J = 1−β . -
Thierry Moreau
Compilation and Hardware Support for Approximate Acceleration Thierry Moreau, Adrian Sampson, Andre Baixo, Mark Wyse, Ben Ransford, Jacob Nelson, Hadi Esmaeilzadeh (Georgia Tech), Luis Ceze and Mark Oskin University of Washington [email protected] Theme: 2384.004 1 Thierry Moreau Approximate Computing Aims to exploit application resilience to trade-off quality for efficiency 2 Thierry Moreau Approximate Computing 3 Thierry Moreau Approximate Computing ✅ Accurate ✅ Approximate ❌ Expensive ✅ Cheap 4 Thierry Moreau 5 Thierry Moreau 6 Thierry Moreau 7 Thierry Moreau Neural Networks as Approximate Accelerators CPU Esmaeilzadeh et al. [MICRO 2012] 8 Thierry Moreau Neural Acceleration float foo (float a, float b) { AR F … NPUM P G return val; approximation acceleration } 9 Thierry Moreau Neural Acceleration compiler-support float foo (float a, float b) { AR F … NPUM P G return val; approximation acceleration } ACCEPT* *Sampson et. al [UW-TR] 10 Thierry Moreau Neural Acceleration compiler-support HW-support float foo (float a, float b) { AR F … NPUM P G return val; approximation acceleration } ACCEPT SNNAP* *Moreau et. al [HPCA2015] 11 Thierry Moreau Neural Acceleration compiler-support HW-support float foo (float a, float b) { AR F … NPUM P G return val; approximation acceleration } ACCEPT SNNAP 3.8x speedup and 2.8x efficiency - 10% error 12 Thierry Moreau Talk Outline Introduction Compiler Support with ACCEPT SNNAP Accelerator design Evaluation & Comparison with HLS 13 Thierry Moreau Compilation Overview code 1. Region detection annotation 14 Thierry Moreau Compilation Overview ACCEPT code region detection 1. Region detection & program annotation instrumentation 15 Thierry Moreau Compilation Overview ACCEPT code region detection 1. Region detection & program annotation instrumentation back prop. -
Heater Element Specifications Bulletin Number 592
Technical Data Heater Element Specifications Bulletin Number 592 Topic Page Description 2 Heater Element Selection Procedure 2 Index to Heater Element Selection Tables 5 Heater Element Selection Tables 6 Additional Resources These documents contain additional information concerning related products from Rockwell Automation. Resource Description Industrial Automation Wiring and Grounding Guidelines, publication 1770-4.1 Provides general guidelines for installing a Rockwell Automation industrial system. Product Certifications website, http://www.ab.com Provides declarations of conformity, certificates, and other certification details. You can view or download publications at http://www.rockwellautomation.com/literature/. To order paper copies of technical documentation, contact your local Allen-Bradley distributor or Rockwell Automation sales representative. For Application on Bulletin 100/500/609/1200 Line Starters Heater Element Specifications Eutectic Alloy Overload Relay Heater Elements Type J — CLASS 10 Type P — CLASS 20 (Bul. 600 ONLY) Type W — CLASS 20 Type WL — CLASS 30 Note: Heater Element Type W/WL does not currently meet the material Type W Heater Elements restrictions related to EU ROHS Description The following is for motors rated for Continuous Duty: For motors with marked service factor of not less than 1.15, or Overload Relay Class Designation motors with a marked temperature rise not over +40 °C United States Industry Standards (NEMA ICS 2 Part 4) designate an (+104 °F), apply application rules 1 through 3. Apply application overload relay by a class number indicating the maximum time in rules 2 and 3 when the temperature difference does not exceed seconds at which it will trip when carrying a current equal to 600 +10 °C (+18 °F). -
K-12 Individual No. Name Team Gr Rate Pts Tbrk1 Tbrk2 Tbrk3 Tbrk4
K-12 Individual No. Name Team Gr Rate Pts TBrk1 TBrk2 TBrk3 TBrk4 Rnd1 Rnd2 Rnd3 Rnd4 Rnd5 Rnd6 1 Chakraborty, Dipro 11 2299 5.5 21 24 43 20.5 W27 W12 W5 W32 W8 D3 State Champion, AZ Denker Representative 2 Yim, Tony Sung BASISS 8 2135 5 20.5 23.5 38.5 17.5 W24 W10 D3 D16 W11 W9 3 Aletheia-Zomlefer, Soren CHANPR 11 1961 5 20 23 35.5 18.5 W25 W26 D2 W40 W15 D1 4 Desmarais, Nicholas Eduard NOTRED 10 1917 5 18 20 33 18 W39 W23 W18 L15 W10 W8 5 Wong, Kinsleigh Phillip CFHS 10 1992 4.5 20 20 24.5 15 -X- W17 L1 W26 D7 W15 6 Todd, Bryce BASISC 10 1923 4.5 17 19 26.5 14.5 W38 D18 L9 W23 W21 W16 7 Chaliki, Kalyan DSMTHS 9 1726 4.5 17 18.5 26 15 W46 L16 W28 W22 D5 W17 8 Li, Bohan UHS 9 2048 4 22 25 29 18 W30 W11 W45 W9 L1 L4 9 Mittal, Rohan CFHS 9 1916 4 19.5 20.5 23 17 W47 W22 W6 L8 W20 L2 10 Pennock, Joshua CFHS 10 1682 4 19 22 24 14 W31 L2 W25 W21 L4 W29 11 Aradhyula, Sumhith CFHS 9 1631 4 18 20 22 14 W41 L8 W38 W13 L2 W19 12 Johnston, Nicolas Godfrey CFHS 9 1803 4 18 19.5 21 13 W43 L1 W29 L17 W24 W20 13 Martis, Tyler BRHS 12 1787 4 17 18 21 13 W42 L15 W24 L11 W18 W22 14 Plumb, Justin Rodney GCLACA 10 1700 4 16 17 20 13 W51 L32 W19 L20 W28 W27 15 Martinez, Isaac GLPREP 10 2159 3.5 21.5 24.5 27.5 16 W28 W13 D16 W4 L3 L5 16 Chen, Derek H CFHS 10 1965 3.5 21 23.5 26 15.5 W35 W7 D15 D2 D17 L6 17 Woodson, Tyler GILBHS 1640 3.5 19 19 17.5 14 W50 L5 W30 W12 D16 L7 18 Cancio, Aiya CFHS 9 1469 3.5 18.5 20 17.5 12.5 W36 D6 L4 W46 L13 W25 AZ Girls' Invitational Representative 19 Folden, Kurt CHANPR 10 1207 3 14 18 12 10 L32 W50 L14 W31 W23 L11 20 Thornton, -
BU97530KVT MAX 445 Segment(89Segx5com)
Datasheet LCD Segment Drivers Multi-function LCD Segment Drivers BU97530KVT MAX 445 Segment(89SEGx5COM) General Description Key Specifications The BU97530KVT is 1/5, 1/4, 1/3 duty or Static ■ Supply Voltage Range: +2.7V to +6.0V General-purpose LCD driver. The BU97530KVT can ■ Operating Temperature Range: -40°C to +85°C drive up to 445 LCD Segments directly. The ■ Max Segments: 445 Segments BU97530KVT can also control up to 9 General-purpose ■ Display Duty Static, 1/3, 1/4, 1/5 Selectable output pins / 9 PWM output pins. ■ Bias: 1/2, 1/3 Selectable These products also incorporate a key scan circuit that ■ Interface: 3wire Serial Interface accepts input from up to 30 keys to reduce printed circuit board wring. Features Package W (Typ) x D (Typ) x H (Max) Key Input Function for up to 30 Keys (A key scan is performed only when a key is pressed.) Either 1/5, 1/4, 1/3 Duty or Static Can be Selected with the Serial Control Data. 1/5 Duty Drive: Up to 445 Segments can be Driven 1/4 Duty Drive: Up to 360 Segments can be Driven 1/3 Duty Drive: Up to 270 Segments can be Driven Static Drive: Up to 90 Segments can be Driven Selectable Display Frame Frequency for Common and Segment Output Waveforms. Configurable Output Pin to Segment Output / PWM Output / General-purpose Output.(Max 9 Pins) Built-in OSC Circuit TQFP100V Integrated Voltage Detection Type Reset Circuit 16.00mm x 16.00mm x 1.20mm (VDET) No External Component Low Power Consumption Design Supports Line and Frame Inversion Applications Car Audio, Home Electrical Appliance, Meter Equipment etc. -
Influencer Poll: Likelihood to Recommend & Support
Wave 56 Influencer Poll Update January 2018 Public Release Influencer Poll: Likelihood to Recommend & Support 1 Likelihood to Recommend and Support Military Service Likelihood to Recommend and Support Military Service 80% 71% 70% 71% 70% 66% 66% 66% 67% 63% 63% 63% 64% 61% 63% 60% 50% 46% 47% 47% 45% 44% 42% 43% 42% 39% 38% 40% 35% 32% 33% 34% 34% 30% 20% 10% Likely to Recommend: % Likely/Very Likely Likely to Support: % Agree/Strongly Agree Yearly Quarterly 0% Jan–Mar 2003 2004 2005 2006 2007 2008 2009 2010 2011 2012 2013 2014 2015 2016 2017 Likely to Recommend Military Service Likely to Support Decision to Join § Influencers’ likelihood to support the decision to join the Military increased significantly from 67% in 2015 to 70% in 2016. § However, Influencers’ likelihood to support the decision to join the Military remained stable in January–March 2017. = Significantly change from previous poll Source: Military Ad Tracking Study (Influencer Market) Wave 56 2 Questions: q1a–c: “Suppose [relation] came to you for advice about various post-high school options. How likely is it that you would recommend joining a Military Service such as the Army, Navy, Marine Corps, Air Force, or Coast Guard?” q2ff: “If [relation] told me they were planning to join the Military, I would support their decision.” Likelihood to Recommend Military Service By Influencer Type Likelihood to Recommend Military Service 80% 70% 63% 59% 59% 60% 58% 60% 57% 56% 57% 55% 54% 53% 48% 55% 50% 54% 47% 52% 51% 44% 51% 47% 42% 42% 42% 49% 41% 43% 42% 45% 45% 46% 40% 42% 37% 41% 39% 41% 38% 38% 38% 37% 37% 39% 34% 35% 34% 30% 33% 33% 32% 33% 32% 31% 32% 31% 31% 31% 32% 20% 25% 25% 24% 31% 29% 10% % Likely/Very Likely Yearly Quarterly 0% Jan–Mar 2003 2004 2005 2006 2007 2008 2009 2010 2011 2012 2013 2014 2015 2016 2017 Fathers Mothers Grandparents Other Influencers § Influencers’ likelihood to recommend military service remained stable in January–March 2017 for all influencer groups. -
Marine Nuclear Power 1939 – 2018 Part 1 Introduction
Marine Nuclear Power: 1939 – 2018 Part 1: Introduction Peter Lobner July 2018 1 Foreword In 2015, I compiled the first edition of this resource document to support a presentation I made in August 2015 to The Lyncean Group of San Diego (www.lynceans.org) commemorating the 60th anniversary of the world’s first “underway on nuclear power” by USS Nautilus on 17 January 1955. That presentation to the Lyncean Group, “60 years of Marine Nuclear Power: 1955 – 2015,” was my attempt to tell a complex story, starting from the early origins of the US Navy’s interest in marine nuclear propulsion in 1939, resetting the clock on 17 January 1955 with USS Nautilus’ historic first voyage, and then tracing the development and exploitation of marine nuclear power over the next 60 years in a remarkable variety of military and civilian vessels created by eight nations. In July 2018, I finished a complete update of the resource document and changed the title to, “Marine Nuclear Power: 1939 – 2018.” What you have here is Part 1: Introduction. The other parts are: Part 2A: United States - Submarines Part 2B: United States - Surface Ships Part 3A: Russia - Submarines Part 3B: Russia - Surface Ships & Non-propulsion Marine Nuclear Applications Part 4: Europe & Canada Part 5: China, India, Japan and Other Nations Part 6: Arctic Operations 2 Foreword This resource document was compiled from unclassified, open sources in the public domain. I acknowledge the great amount of work done by others who have published material in print or posted information on the internet pertaining to international marine nuclear propulsion programs, naval and civilian nuclear powered vessels, naval weapons systems, and other marine nuclear applications. -
CHICAGO PUBLIC LEAGUE CHESS CHAMPIONSHIP JANUARY 28, 2012 8-Board Varsity Standings No. Name St Rate 1 2
CHICAGO PUBLIC LEAGUE CHESS CHAMPIONSHIP JANUARY 28, 2012 8-Board Varsity Standings No. Name St Rate 1 2 3 4 Score 1. Northside (2)................. 1398 W7,63.5 W4,63.0 W9,68.0 W2,36.0 4.0 2. Young (1)..................... 1609 W6,68.0 W3,68.0 W5,68.0 L1,32.0 3.0 3. Lane (4)...................... 1372 W10,52.0 L2,0.0 W6,45.0 W5,48.0 3.0 4. Lincoln Park (6).............. 1144 W11,50.0 L1,5.0 W7,63.0 W8,62.0 3.0 5. Jones (5)..................... 1330 W12,63.0 W8,56.0 L2,0.0 L3,20.0 2.0 6. Kelly (7)..................... 1074 L2,0.0 W11,58.0 L3,23.0 W9,65.5 2.0 7. Lake View (8)................. 956 L1,4.5 W12,50.0 L4,5.0 W11,36.0 2.0 8. Marshall (9).................. 866 W9,42.0 L5,12.0 W10,37.0 L4,6.0 2.0 9. Hubbard (3)................... 1373 L8,26.0 W10,35.0 L1,0.0 L6,2.5 1.0 10. Ace (10)...................... 787 L3,16.0 L9,33.0 L8,31.0 W12,64.0 1.0 11. King (11)..................... nnnn L4,18.0 L6,10.0 W12,54.0 L7,32.0 1.0 12. Noble Street (12)............. nnnn L5,5.0 L7,18.0 L11,14.0 L10,4.0 0.0 Board Cross Tables No. Name Rate 1 2 3 4 Score BOARD 1 1. Schmakel, Sam a, Young....................... 2076 W2 W5 W7 W3 4.0 2. -
BU91530KVT-M : Display Drivers
Datasheet LCD Segment Drivers Multi-function LCD Segment Drivers BU91530KVT-M MAX 445 Segment(89SEGx5COM) General Description Key Specifications The BU91530KVT-M is 1/5, 1/4, 1/3 or 1/1 duty ■ Supply Voltage Range: +2.7V to +6.0V general-purpose LCD driver that can be used for ■ Operating Temperature Range: -40°C to +85°C frequency display in electronic tuners under the control of ■ Max Segments: 445 Segments a microcontroller. The BU91530KVT-M can drive up to ■ Display Duty 1/1, 1/3, 1/4, 1/5 Selectable 445 LCD Segments directly. The BU91530KVT-M can ■ Bias: 1/2, 1/3 Selectable also control up to 9 general-purpose output ports. ■ Interface: 3wire Serial Interface These products also incorporate a key scan circuit that accepts input from up to 30 keys to reduce printed circuit board wring. Package W (Typ.) x D (Typ.) x H (Max.) Features AEC-Q100 Qualified (Note1) Key input function for up to 30 keys (A key scan is performed only when a key is pressed.) Either 1/5, 1/4, 1/3 or 1/1 duty (static) can be selected with the serial control data. 1/5 duty drive: Up to 445 segments can be driven 1/4 duty drive: Up to 360 segments can be driven 1/3 duty drive: Up to 270 segments can be driven 1/1 duty drive: Up to 90 segments can be driven Serial Data Control of frame frequency for common and segment output waveforms. Serial data control of switching between the segment TQFP100V output port , PWM output port and general-purpose 16.00mm x 16.00mm x 1.20mm output port functions.(Max 9 ports) Built-in OSC circuit Integrated Power-on Reset Circuit No external component Low power consumption design Supports Line and Frame Inversion (Note1) Grade 3 Applications Car Audio, Home Electrical Appliance, Meter Equipment etc. -
Water Resources During Drought Conditions and Postfire Water Quality in the Upper Rio Hondo Basin, Lincoln County, New Mexico, 2010–13
Prepared in cooperation with Lincoln County, New Mexico Water Resources During Drought Conditions and Postfire Water Quality in the Upper Rio Hondo Basin, Lincoln County, New Mexico, 2010–13 Scientific Investigations Report 2015–5086 U.S. Department of the Interior U.S. Geological Survey Cover: Top, Burned forest near Bonito Lake after Little Bear Fire in June 2012 (U.S. Geological Survey photograph by Michael J. Darr, July 2012). Bottom, Streamflow-gaging station located on Eagle Creek below South Fork near Alto, New Mexico, April 2013 (left) and July 2013 (right) (U.S. Geological Survey photographs by Lauren R. Sherson). Water Resources During Drought Conditions and Postfire Water Quality in the Upper Rio Hondo Basin, Lincoln County, New Mexico, 2010–13 By Lauren R. Sherson and Steven E. Rice Prepared in cooperation with Lincoln County, New Mexico Scientific Investigations Report 2015–5086 U.S. Department of the Interior U.S. Geological Survey U.S. Department of the Interior SALLY JEWELL, Secretary U.S. Geological Survey Suzette M. Kimball, Acting Director U.S. Geological Survey, Reston, Virginia: 2015 For more information on the USGS—the Federal source for science about the Earth, its natural and living resources, natural hazards, and the environment—visit http://www.usgs.gov or call 1–888–ASK–USGS. For an overview of USGS information products, including maps, imagery, and publications, visit http://www.usgs.gov/pubprod/. Any use of trade, firm, or product names is for descriptive purposes only and does not imply endorsement by the U.S. Government. Although this information product, for the most part, is in the public domain, it also may contain copyrighted materials as noted in the text. -
NEMA Motor Control
Bulletin Eutectic Alloy Overload Relays Heater Elements Selection For Application on Bulletin 100/500/609/1200 Line Starters Eutectic Alloy Overload Relay Heater Elements Heater Element Selection Type J — CLASS 10 Table of Contents 0 Type P — CLASS 20 (Bul. 600 ONLY) Type W — CLASS 20 Overload Relay Type WL — CLASS 30 Class Designation...... this page Heater Element Selection ....................... this page 1 Type W Heater Elements Ambient Temperature Correction..................... this page Time — Current Characteristics............ 1-169 2 Index to Heater Element Selection Tables ............................. 1-170 3 Description The following is for motors rated for Continuous Duty: For motors with marked service factor of not less than 1.15, or Overload Relay Class Designation motors with a marked temperature rise not over +40 °C United States Industry Standards (NEMA ICS 2 Part 4) designate an (+104 °F), apply application rules 1 through 3. Apply application 4 overload relay by a class number indicating the maximum time in rules 2 and 3 when the temperature difference does not exceed seconds at which it will trip when carrying a current equal to 600 +10 °C (+18 °F). When the temperature difference is greater, see percent of its current rating. below. A Class 10 overload relay will trip in 10 seconds or less at a current 1. The Same Temperature at the Controller and the Motor — equal to 600 percent of its rating. Select the “Heater Type Number” with the listed “Full Load 5 Amperes” nearest the full load value shown on the motor A Class 20 overload relay will trip in 20 seconds or less at a current nameplate. -
Nuclear Weapons Databook, Volume I 3 Stockpile
3 Stockpile Chapter Three USNuclear Stockpile This section describes the 24 types of warheads cur- enriched uranium (oralloy) as its nuclear fissile material rently in the U.S. nuclear stockpile. As of 1983, the total and is considered volatile and unsafe. As a result, its number of warheads was an estimated 26,000. They are nuclear materials and fuzes are kept separately from the made in a wide variety of configurations with over 50 artillery projectile. The W33 can be used in two differ- different modifications and yields. The smallest war- ent yield configurations and requires the assembly and head is the man-portable nuclear land mine, known as insertion of distinct "pits" (nuclear materials cores) with the "Special Atomic Demolition Munition" (SADM). the amount of materials determining a "low" or '4high'' The SADM weighs only 58.5 pounds and has an explo- yield. sive yield (W54) equivalent to as little as 10 tons of TNT, In contrast, the newest of the nuclear warheads is the The largest yield is found in the 165 ton TITAN I1 mis- W80,5 a thermonuclear warhead built for the long-range sile, which carries a four ton nuclear warhead (W53) Air-Launched Cruise Missile (ALCM) and first deployed equal in explosive capability to 9 million tons of TNT, in late 1981. The W80 warhead has a yield equivalent to The nuclear weapons stockpile officially includes 200 kilotons of TNT (more than 20 times greater than the only those nuclear missile reentry vehicles, bombs, artil- W33), weighs about the same as the W33, utilizes the lery projectiles, and atomic demolition munitions that same material (oralloy), and, through improvements in are in "active service."l Active service means those electronics such as fuzing and miniaturization, repre- which are in the custody of the Department of Defense sents close to the limits of technology in building a high and considered "war reserve weapons." Excluded are yield, safe, small warhead.