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  1. NTU Theses and Dissertations Repository
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請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/85713
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor陳坤志(KUN-CHIH CHEN)
dc.contributor.authorHSIN-HSIANG HUANGen
dc.contributor.author黃信翔zh_TW
dc.date.accessioned2023-03-19T23:22:13Z-
dc.date.copyright2022-07-22
dc.date.issued2022
dc.date.submitted2022-06-14
dc.identifier.citationAgrawal, S., Chen, V. Y. S., & Zhang, W. (2016) The information value of credit rating action reports: A textual analysis. Management Science, 62(8), 2218-2240. Atkins, D. C., Rubin T. N., Steyvers M., Doeden M. A., Baucom B. R., & Christensen A. (2012). Topic models: A novel method for modeling couple and family text data. Journal of Family Psychology, 26(5), 816–827. Bao, Y., & Datta, A. (2014). Simultaneously discovering and quantifying risk types from textual risk disclosures. Management Science, 60(6), 1371-1391. Bellstam, G., Bhagat, S., & Cookson J. A. (2021). A text-based analysis of corporate innovation. Management Science, 67(7), 4004-4031. Blei, D. M., Ng, A. Y., & Jordan, M. I. (2003). Latent Dirichlet allocation. Journal of Machine Learning Research, 3, 993-1022. Bodnaruk, A., Loughran, T., & McDonald, B. (2015). Using 10-K text to gauge financial constraints, journal of financial and quantitative analysis. Journal of Financial and Quantitative Analysis, 50(4), 623 – 646. Bradshaw, M. (2011). Analysts' forecasts: What do we know after decades of work? [Working paper]. Boston College. http://dx.doi.org/10.2139/ssrn.1880339 Chang, J., Gerrish, S., Wang, C., Boyd-Graber, J., & Blei, D. (2009). Reading tea leaves: How humans interpret topic models. In Proceedings of the Advances in Neural Information Processing Systems (NIPS), 288-296 De Franco, G., Hope, O., Vyas, D., & Zhou, Y. (2015). Analyst Report Readability. Contemporary Accounting Research, 32(1), 76–104. Huang, A. H., Lehavy, R., Zang, A. Y., & Zheng, R. (2018). Analyst information discovery and interpretation roles: A topic modeling approach. Management Science, 64(6), 2833-2855. Huang, A., Zang, A., & Zheng, R. (2014). Evidence on the information content of text in analyst reports. The Accounting Review, 89(6), 2151–2180. Iselin, M., Park, M., & Buskirk, A. V. (2021). Seemingly inconsistent analyst revisions. Journal of Accounting and Economics, 71(1), 1-22. Jensen, M. C., & Meckling, W. H. (1976). Theory of the firm: Managerial behavior, agency costs and ownership structure. Journal of financial economics, 3(4), 305-360. Jessica, H. (2008, December 23). Global M&A falls in 2008, ends 5 years of growth. Reuters. https://www.reuters.com/article/dealyear-idUSHKG26366620081222 Kurt, A. C. (2018). How do financial constraints relate to financial reporting quality? Evidence from seasoned equity offerings. European Accounting Review, 27(3), 527-557. L.A. Times Archives. (2002, February 26). Morgan Stanley to simplify stock rating system. L.A. Times. https://www.latimes.com/archives/la-xpm-2002-feb-26-fi-wrap26.1-story.html Li, F. (2008). Annual report readability, current earnings, and earnings persistence. Journal of Accounting and Economics, 45(2-3), 221–247. Li, F. (2010a). The information content of forward-looking statements in corporate filings—A nave Bayesian machine learning approach. Journal of Accounting Research, 48(5), 1049-1102. Loughran, T., & McDonald, B. (2011). When is a liability not a liability? Textual analysis, dictionaries, and 10-Ks. The Journal of Finance, 66(1), 35–65. Mählmann, T. (2011). Is there a relationship benefit in credit ratings? Review of Finance, 15(3), 475–510. Malmendier, U., & Shanthikumar, D. (2014). Do security analysts speak in two tongues? The Review of Financial Studies, 27(5), 1287-1322. Mark, M. (2007, January 20). Global M&A hits record $3.37 trillion, Reuters. https://www.reuters.com/article/us-financial-summit-mergers-idUSN1639640520061117 Myers, S. C., & Majluf, N. (1984). Corporate financing and investment decisions when firms have information that investors do not have. Journal of Financial Economics, 13(2), 187-221. Quinn, K. M., Monroe, B. L., Colaresi, M., Crespin, M. H., Radev, D. R. (2010). How to analyze political attention with minimal assumptions and costs. American Journal of Political Science, 54(1), 209–228. Sikka, P. (2009). Financial crisis and the silence of the auditors. Accounting, Organizations and Society, 34(6-7), 868-873. SRI International. (1987). Investor Information Needs and the Annual Report. Morristown, NJ: Financial Executives Research Foundation. Tetlock, P. C. (2007). Giving content to investor sentiment: The role of media in the stock market. The Journal of Finance, 62(3), 1139–1168. Tetlock, P. C., Saar-Tsechansky, M., & Macskassy, S. (2008). More than words: Quantifying language to measure firm’s fundamentals. The Journal of Finance, 63(3), 1437–1467. Tidd, J., Bessant, J., & Pavitt, K. (2005). Managing innovation: Integrating technological, market and organizational change. John Wiley & Sons, New York. Tsao, A. (2002, April 24). When a stock’s rating and target collide. Business Week. https://www.bloomberg.com/news/articles/2002-04-24/when-a-stocks-rating-and-target-collide Twedt, B., & Rees, L. (2012). Reading between the lines: An empirical examination of qualitative attributes of financial analysts’ reports. Journal of Accounting and Public Policy, 31(1), 1–21. 陳光華(2012年10月)。文本探勘。圖書館學與資訊科學大辭典。http://terms.naer.edu.tw/detail/1679014/ 張志溢(2010)。投資人對上市(櫃)公司網站資訊過度自信之研究-以年報事件宣告為例〔未出版之碩士論文〕。國立雲林科技大學資訊管理系。
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/85713-
dc.description.abstract本研究使用字典法與Latent Dirichlet Allocation(LDA)等文字探勘(Text-mining)技術,對美國某間知名國際金融服務公司所發布之證券分析師報告內文進行情感分析與主題辨識,定義撰寫語氣(Tone)與探討主題(Topic),並測試該二項資訊與投資評等、市場報酬變化之相關性。 實證結果顯示:當分析師在報告中使用了更多的負面語氣詞彙,將傾向下調投資評等;投資者對這些資訊的認知,亦將反映於下降的市場報酬上。反之,若分析師使用了更多的正面語氣,則會有完全相反的結果。除了較基礎的正負語氣外,其他語氣類型對投資評等與市場報酬變化亦有影響。此外,透過語氣與主題變數之交互作用,本研究亦發現,對於分析師與市場中之投資人而言,那些議題之研究觀點可能是重要的。 綜上所述,本研究驗證了分析師報告之資訊價值,為報告使用者對投資評等之解讀與學者對報告資訊衡量之研究提供了參考。zh_TW
dc.description.abstractThis paper uses text-mining techniques such as Latent Dirichlet Allocation (LDA) to conduct sentiment analysis and topic discovery to define the tones and topics in the analyst reports, and examines whether these two qualitative attributes are significant in explaining changes in stock rating and market response. The empirical results show that when analysts use more negative tone terms in their reports, they tend to downgrade the ratings; lower market returns also reflect investors' perception of this information. Conversely, if analysts use a more positive tone, the opposite results will occur. Other tones also have an impact on stock ratings and market return. In addition, through the interaction of tones and topics, I figure out what research perspectives may be important to analysts and investors in the market. In conclusion, this paper validates the information value of analyst reports and provides a reference for the interpretation of stock ratings and the measurement of information in reports.en
dc.description.provenanceMade available in DSpace on 2023-03-19T23:22:13Z (GMT). No. of bitstreams: 1
U0001-1106202216455700.pdf: 2807968 bytes, checksum: 52d634a12796fbd8dfd4f5abea0007fd (MD5)
Previous issue date: 2022
en
dc.description.tableofcontents目錄 第壹章 緒論 1 第貳章 文獻探討與研究假說建立 4 第一節 文字探勘於會計與金融文獻中之應用 4 第二節 Latent Dirichlet Allocation(LDA) 9 第三節 假說建立 11 第參章 樣本與研究設計 14 第一節 樣本篩選 14 第二節 變數衡量 16 第三節 研究設計 23 第肆章 實證結果 30 第一節 樣本敘述性統計 30 第二節 假說檢定 32 第三節 穩健性測試 45 第伍章 結論與建議 47 第一節 研究結論與建議 47 第二節 研究限制 48 參考文獻 49 附錄 53 圖目錄 圖2-1:LDA運作原理圖解 10 圖3-1:報告探討主題比例之變化 – 依年度 18 圖3-2:樣本之產業分布 19 圖3-3:報告探討主題比例之變化 – 依產業 20 表目錄 表3-1:樣本篩選流程 60 表3-2:報告中8大語氣高出現頻率之詞彙 61 表3-3:報告前10大主題中高出現頻率之詞彙 62 表3-4:變數定義 64 表3-5:變數定義補充 66 表4-1:樣本敘述性統計 67 表4-2:樣本敘述性統計 – 代理變數 69 表4-3:變數相關係數表 71 表4-4:分析師報告中語氣(Tone)對投資評等升降的影響 77 表4-5:分析師報告中語氣(Tone)與主題(Topic)對投資評等升降的影響 82 表4-6:證券市場對分析師報告中撰寫語氣(Tone)的反應 86 表4-7:證券市場對分析師報告中撰寫語氣(Tone)與探討主題(Topic)的反應 92
dc.language.isozh-TW
dc.subject分析師報告zh_TW
dc.subject文字探勘zh_TW
dc.subject情感分析zh_TW
dc.subject資訊價值zh_TW
dc.subjectLatent Dirichlet Allocationzh_TW
dc.subjectText-miningen
dc.subjectSentiment Analysisen
dc.subjectAnalyst Reportsen
dc.subjectLatent Dirichlet Allocationen
dc.subjectInformation Valueen
dc.title證券分析師報告之資訊內涵 – 文字探勘技術之應用zh_TW
dc.titleRead Between the Lines: A Textual Analysis of Equity Research Reportsen
dc.typeThesis
dc.date.schoolyear110-2
dc.description.degree碩士
dc.contributor.oralexamcommittee黃祥宇(XIANG-YU HUANG),謝昇峯(SHENG-FENG HSIEH),陳漢鐘(HAN-CHUNG CHEN)
dc.subject.keyword分析師報告,文字探勘,情感分析,Latent Dirichlet Allocation,資訊價值,zh_TW
dc.subject.keywordAnalyst Reports,Text-mining,Sentiment Analysis,Latent Dirichlet Allocation,Information Value,en
dc.relation.page101
dc.identifier.doi10.6342/NTU202200915
dc.rights.note同意授權(全球公開)
dc.date.accepted2022-06-15
dc.contributor.author-college管理學院zh_TW
dc.contributor.author-dept會計學研究所zh_TW
dc.date.embargo-lift2022-07-22-
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