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Papers Containing Keywords(s): 'company'

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Longitudinal Business Database - 72

North American Industry Classification System - 52

Center for Economic Studies - 51

National Science Foundation - 45

Standard Industrial Classification - 35

Annual Survey of Manufactures - 32

Ordinary Least Squares - 32

Internal Revenue Service - 29

Longitudinal Research Database - 29

Total Factor Productivity - 28

Census Bureau Disclosure Review Board - 27

Economic Census - 26

Business Register - 26

Federal Statistical Research Data Center - 25

Metropolitan Statistical Area - 25

Census of Manufactures - 25

Bureau of Economic Analysis - 25

Bureau of Labor Statistics - 24

Employer Identification Numbers - 24

National Bureau of Economic Research - 24

Standard Statistical Establishment List - 23

Longitudinal Employer Household Dynamics - 17

Small Business Administration - 17

Census Bureau Business Register - 17

Business Dynamics Statistics - 16

Survey of Industrial Research and Development - 16

Census Bureau Longitudinal Business Database - 15

Census of Manufacturing Firms - 14

Business Research and Development and Innovation Survey - 14

Disclosure Review Board - 13

Patent and Trademark Office - 13

Chicago Census Research Data Center - 13

Federal Reserve Bank - 12

Securities and Exchange Commission - 11

Service Annual Survey - 11

Organization for Economic Cooperation and Development - 11

County Business Patterns - 11

Herfindahl Hirschman Index - 11

University of Chicago - 11

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Characteristics of Business Owners - 10

Social Security Administration - 10

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Business R&D and Innovation Survey - 9

Survey of Business Owners - 8

Technical Services - 8

Current Population Survey - 8

Longitudinal Firm Trade Transactions Database - 8

Financial, Insurance and Real Estate Industries - 8

Kauffman Foundation - 8

Company Organization Survey - 7

Michigan Institute for Teaching and Research in Economics - 7

Department of Homeland Security - 7

Alfred P Sloan Foundation - 7

Annual Business Survey - 7

Wholesale Trade - 7

IBM - 7

Cornell Institute for Social and Economic Research - 7

Review of Economics and Statistics - 7

Annual Survey of Entrepreneurs - 6

Research and Development - 6

Accommodation and Food Services - 6

National Center for Science and Engineering Statistics - 6

World Bank - 6

Citizenship and Immigration Services - 6

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Office of Management and Budget - 5

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Decennial Census - 5

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Business Formation Statistics - 5

Environmental Protection Agency - 5

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National Research Council - 5

MIT Press - 5

Medical Expenditure Panel Survey - 5

Washington University - 5

Department of Commerce - 5

Center for Research in Security Prices - 4

National Employer Survey - 4

Integrated Longitudinal Business Database - 4

COVID-19 - 4

Duke University - 4

American Economic Association - 4

Quarterly Workforce Indicators - 4

University of Maryland - 4

Federal Reserve System - 4

International Trade Research Report - 4

Employment History File - 4

Harvard University - 4

COMPUSTAT - 4

Journal of Political Economy - 4

American Economic Review - 4

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Information and Communication Technology Survey - 3

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New York Times - 3

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Management and Organizational Practices Survey - 3

Limited Liability Company - 3

University of Minnesota - 3

Local Employment Dynamics - 3

Computer Network Use Supplement - 3

Permanent Plant Number - 3

Census Bureau Center for Economic Studies - 3

Journal of Economic Literature - 3

New York University - 3

Boston Research Data Center - 3

Survey of Manufacturing Technology - 3

enterprise - 52

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innovation - 39

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entrepreneur - 32

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corporation - 26

patent - 25

industrial - 25

acquisition - 25

econometric - 25

venture - 24

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manufacturer - 22

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corporate - 20

patenting - 20

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merger - 16

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investor - 14

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incorporated - 13

earnings - 13

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recession - 13

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demand - 5

monopolistic - 5

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patenting firms - 5

younger firms - 5

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startup firms - 5

outsourced - 5

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firm growth - 5

innovation productivity - 5

firms census - 5

agricultural - 5

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industry productivity - 5

plants industry - 5

labor productivity - 5

minority - 4

security - 4

estimation - 4

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longitudinal - 4

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manufacturing plants - 4

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productivity estimates - 4

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farm - 4

firms plants - 4

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plants firms - 4

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information census - 3

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executive - 3

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employment dynamics - 3

employment statistics - 3

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small firms - 3

marketing - 3

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estimates employment - 3

rent - 3

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businesses grow - 3

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manufacturing industries - 3

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Viewing papers 11 through 20 of 128


  • Working Paper

    Measuring the Business Dynamics of Firms that Received Pandemic Relief Funding: Findings from a New Experimental BDS Data Product

    January 2025

    Working Paper Number:

    CES-25-05

    This paper describes a new experimental data product from the U.S. Census Bureau's Center for Economic Studies: the Business Dynamics Statistics (BDS) of firms that received Small Business Administration (SBA) pandemic funding. This new product, BDS-SBA COVID, expands the set of currently published BDS tables by linking loan-level program participation data from SBA to internal business microdata at the U.S. Census Bureau. The linked programs include the Paycheck Protection Program (PPP), COVID Economic Injury Disaster Loans (COVID-EIDL), the Restaurant Revitalization Fund (RRF), and Shuttered Venue Operators Grants (SVOG). Using these linked data, we tabulate annual firm and establishment counts, measures of job creation and destruction, and establishment entry and exit for recipients and non-recipients of program funds in 2020-2021. We further stratify the tables by timing of loan receipt and loan size, and business characteristics including geography, industry sector, firm size, and firm age. We find that for the youngest firms that received PPP, the timing of receipt mattered. Receiving an early loan correlated with a lower job destruction rate compared to non-recipients and businesses that received a later loan. For the smallest firms, simply participating in PPP was associated with lower employment loss. The timing of PPP receipt was also related to establishment exit rates. For businesses of nearly all ages, those that received an early loan exited at a lower rate in 2022 than later loan recipients.
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  • Working Paper

    Investigating the Effect of Innovation Activities of Firms on Innovation Performance: Does Firm Size Matter?

    January 2025

    Working Paper Number:

    CES-25-04

    Understanding the relationship between a firm's innovation activities and its performance has been of great interest to management scholars. While the literature on innovation activities is vast, there is a dearth of studies investigating the effect of key innovation activities of the firm on innovation outcomes in a single study, and whether their effects are dependent on the nature of firms, specifically firm size. Drawing from a longitudinal dataset from the Business Research & Development and Innovation Survey (BRDIS), and informed by contingency theory and resource orchestration theory, we examine the relationship between a firm's innovation activities - including its Research & Development (R&D) investment, securing patents, collaborative R&D, R&D toward new business areas, and grants for R&D - and its product innovation and process innovation. We also investigate whether these relationships are contingent on firm size. Consistent with contingency theory, we find a significant difference between large firms and small firms regarding how they enhance product innovation and process innovation. Large firms can improve product innovation by securing patents through applications and issuances, coupled with active participation in collaborative R&D efforts. Conversely, smaller firms concentrate their efforts on the number of patents applied for, directing R&D efforts toward new business areas, and often leveraging grants for R&D efforts. To achieve process innovation, a similar dichotomy emerges. Larger firms demonstrate a commitment to securing patents, engage in R&D efforts tailored to new business areas, and actively collaborate with external entities on R&D efforts. In contrast, smaller firms primarily focus on securing patents and channel their R&D efforts toward new business pursuits. This nuanced exploration highlights the varied strategies employed by large and small firms in navigating the intricate landscape of both product and process innovation. The results shed light on specific innovation activities as antecedents of innovation outcomes and demonstrate how the effectiveness of such assets is contingent upon firm size.
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  • Working Paper

    Financing, Ownership, and Performance: A Novel, Longitudinal Firm-Level Database

    December 2024

    Working Paper Number:

    CES-24-73

    The Census Bureau's Longitudinal Business Database (LBD) underpins many studies of firm-level behavior. It tracks longitudinally all employers in the nonfarm private sector but lacks information about business financing and owner characteristics. We address this shortcoming by linking LBD observations to firm-level data drawn from several large Census Bureau surveys. The resulting Longitudinal Employer, Owner, and Financing (LEOF) database contains more than 3 million observations at the firm-year level with information about start-up financing, current financing, owner demographics, ownership structure, profitability, and owner aspirations ' all linked to annual firm-level employment data since the firm hired its first employee. Using the LEOF database, we document trends in owner demographics and financing patterns and investigate how these business characteristics relate to firm-level employment outcomes.
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  • Working Paper

    Industry Shakeouts after an Innovation Breakthrough

    November 2024

    Authors: Xiaoyang Li

    Working Paper Number:

    CES-24-70

    Conventional wisdom suggests that after a technological breakthrough, the number of active firms first surges, and then sharply declines, in what is known as a 'shakeout'. This paper challenges that notion with new empirical evidence from across the U.S. economy, revealing that shakeouts are the exception, not the rule. I develop a statistical strategy to detect breakthroughs by isolating sustained anomalies in net firm entry rates, offering a robust alternative to narrative-driven approaches that can be applied to all industries. The results of this strategy, which reliably align with well-documented breakthroughs and remain consistent across various validation tests, uncover a novel trend: the number of entry-driven breakthroughs has been declining over time. The variability and frequent absence of shakeouts across breakthrough industries are consistent with breakthroughs primarily occurring in industries with low returns to scale and with modest learning curves, shifting the narrative on the nature of innovation over the past forty years in the U.S.
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  • Working Paper

    Tracking Firm Use of AI in Real Time: A Snapshot from the Business Trends and Outlook Survey

    March 2024

    Working Paper Number:

    CES-24-16R

    Timely and accurate measurement of AI use by firms is both challenging and crucial for understanding the impacts of AI on the U.S. economy. We provide new, real-time estimates of current and expected future use of AI for business purposes based on the Business Trends and Outlook Survey for September 2023 to February 2024. During this period, bi-weekly estimates of AI use rate rose from 3.7% to 5.4%, with an expected rate of about 6.6% by early Fall 2024. The fraction of workers at businesses that use AI is higher, especially for large businesses and in the Information sector. AI use is higher in large firms but the relationship between AI use and firm size is non-monotonic. In contrast, AI use is higher in young firms. Common uses of AI include marketing automation, virtual agents, and data/text analytics. AI users often utilize AI to substitute for worker tasks and equipment/software, but few report reductions in employment due to AI use. Many firms undergo organizational changes to accommodate AI, particularly by training staff, developing new workflows, and purchasing cloud services/storage. AI users also exhibit better overall performance and higher incidence of employment expansion compared to other businesses. The most common reason for non-adoption is the inapplicability of AI to the business.
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  • Working Paper

    Starting Up AI

    March 2024

    Working Paper Number:

    CES-24-09R

    Using comprehensive administrative data on business applications over the period 2004- 2023, we study business applications (ideas) and the resulting startups that aim to develop AI technologies or produce goods or services that use, integrate, or rely on AI. The annual number of new AI-related business applications is stable between 2004 and 2011, but begins to rise in 2012 with further increases from 2016 onward into the Covid-19 pandemic and beyond, with a large, discrete jump in 2023. The distribution of these applications is highly uneven across states and sectors. AI business applications have a higher likelihood of becoming employer startups compared to other applications. Moreover, businesses originating from these applications exhibit higher revenue, average wage, and labor share, but similar labor productivity and lower survival rate, compared to other businesses. While it is still early in the diffusion of AI, the rapid rise in AI business applications, combined with the better performance of resulting businesses in several key outcomes, suggests a growing contribution from AI-related business formation to business dynamism.
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  • Working Paper

    The Rise of Specialized Firms

    February 2024

    Working Paper Number:

    CES-24-06

    This paper studies firm diversification over 6-digit NAICS industries in U.S. manufacturing. We find that firms specializing in fewer industries now account for a substantially greater share of production than 40 years ago. This reallocation is a key driver of rising industry concentration. Specialized firms have displaced diversified firms among industry leaders'absent this reallocation concentration would have decreased. We then provide evidence that specialized firms produce higher-quality goods: specialized firms tend to charge higher unit prices and are more insulated against Chinese import competition. Based on our empirical findings, we propose a theory in which growth shifts demand toward specialized, high-quality firms, which eventually increases concentration. We conclude that one should expect rising industry concentration in a growing economy.
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  • Working Paper

    Are Immigrants More Innovative? Evidence from Entrepreneurs

    November 2023

    Working Paper Number:

    CES-23-56

    We evaluate the contributions of immigrant entrepreneurs to innovation in the U.S. using linked survey-administrative data on 199,000 firms with a rich set of innovation measures and other firm and owner characteristics. We find that not only are immigrants more likely than natives to own businesses, but on average their firms display more innovation activities and outcomes. Immigrant owned firms are particularly more likely to create completely new products, improve previous products, use new processes, and engage in both basic and applied R&D, and their efforts are reflected in substantially higher levels of patents and productivity. Immigrant owners are slightly less likely than natives to imitate products of others and to hire more employees. Delving into potential explanations of the immigrant-native differences, we study other characteristics of entrepreneurs, access to finance, choice of industry, immigrant self-selection, and effects of diversity. We find that the immigrant innovation advantage is robust to controlling for detailed characteristics of firms and owners, it holds in both high-tech and non-high-tech industries and, with the exception of productivity, it tends to be even stronger in firms owned by diverse immigrant-native teams and by diverse immigrants from different countries. The evidence from nearly all measures that immigrants tend to operate more innovative and productive firms, together with the higher share of business ownership by immigrants, implies large contributions to U.S. innovation and growth.
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  • Working Paper

    Temperature and Local Industry Concentration

    October 2023

    Working Paper Number:

    CES-23-51

    We use plant-level data from the US Census of Manufacturers to study the short and long run effects of temperature on manufacturing activity. We document that temperature shocks significantly increase energy costs and lower the productivity of small manufacturing plants, while large plants are mostly unaffected. In US counties that experienced higher increases in average temperatures between the 1980s and the 2010s, these heterogeneous effects have led to higher concentration of manufacturing activity within large plants, and a reallocation of labor from small to large manufacturing establishments. We offer a preliminary discussion of potential mechanisms explaining why large manufacturing firms might be better equipped for long-run adaptation to climate change, including their ability to hedge across locations, easier access to finance, and higher managerial skills.
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  • Working Paper

    AI Adoption in America: Who, What, and Where

    September 2023

    Working Paper Number:

    CES-23-48R

    We study the early adoption and diffusion of five AI-related technologies (automated-guided vehicles, machine learning, machine vision, natural language processing, and voice recognition) as documented in the 2018 Annual Business Survey of 850,000 firms across the United States. We find that fewer than 6% of firms used any of the AI-related technologies we measure, though most very large firms reported at least some AI use. Weighted by employment, average adoption was just over 18%. AI use in production, while varying considerably by industry, nevertheless was found in every sector of the economy and clustered with emerging technologies such as cloud computing and robotics. Among dynamic young firms, AI use was highest alongside more educated, more-experienced, and younger owners, including owners motivated by bringing new ideas to market or helping the community. AI adoption was also more common alongside indicators of high-growth entrepreneurship, including venture capital funding, recent product and process innovation, and growth-oriented business strategies. Early adoption was far from evenly distributed: a handful of 'superstar' cities and emerging hubs led startups' adoption of AI. These patterns of early AI use foreshadow economic and social impacts far beyond this limited initial diffusion, with the possibility of a growing 'AI divide' if early patterns persist.
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