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datasets

  • Bi-density twin support vector machines

    In this paper we present a classifier called bi-density twin support vector machines (BDTWSVMs) for data classification. In the training stage, BDTWSVMs first compute the relative density degrees for all training points using the intra-class graph whose weights are determined by a local scaling heuristic strategy, then optimize a pair of nonparallel hyperplanes through two smaller sized support vector machine (SVM)-typed problems. In the prediction stage, BDTWSVMs assign to the class label depending on the kernel density degree-based distances from each test point to the two hyperplanes. BDTWSVMs not only inherit good properties from twin support vector machines (TWSVMs) but also give good description for data points. The experimental results on toy as well as publicly available datasets indicate that BDTWSVMs compare favorably with classical SVMs and TWSVMs in terms of generalization

    標簽: recognition Bi-density machines support pattern vector twin for

    上傳時間: 2019-06-09

    上傳用戶:lyaiqing

  • Machine learning

    Machine learning is about designing algorithms that automatically extract valuable information from data. The emphasis here is on “automatic”, i.e., machine learning is concerned about general-purpose methodologies that can be applied to many datasets, while producing something that is mean- ingful. There are three concepts that are at the core of machine learning: data, a model, and learning.

    標簽: learning Machine

    上傳時間: 2020-06-10

    上傳用戶:shancjb

  • 《Python深度學習》2018中文版+源代碼

    這是我在做大學教授期間推薦給我學生的一本書,非常好,適合入門學習。《python深度學習》由Keras之父、現任Google人工智能研究員的弗朗索瓦?肖萊(Franc?ois Chollet)執筆,詳盡介紹了用Python和Keras進行深度學習的探索實踐,包括計算機視覺、自然語言處理、產生式模型等應用。書中包含30多個代碼示例,步驟講解詳細透徹。作者在github公布了代碼,代碼幾乎囊括了本書所有知識點。在學習完本書后,讀者將具備搭建自己的深度學習環境、建立圖像識別模型、生成圖像和文字等能力。但是有一個小小的遺憾:代碼的解釋和注釋是全英文的,即使英文水平較好的朋友看起來也很吃力。本人認為,這本書和代碼是初學者入門深度學習及Keras最好的工具。作者在github公布了代碼,本人參照書本,對全部代碼做了中文解釋和注釋,并下載了代碼所需要的一些數據集(尤其是“貓狗大戰”數據集),并對其中一些圖像進行了本地化,代碼全部測試通過。(請按照文件順序運行,代碼前后有部分關聯)。以下代碼包含了全書約80%左右的知識點,代碼目錄:2.1: A first look at a neural network( 初識神經網絡)3.5: Classifying movie reviews(電影評論分類:二分類問題)3.6: Classifying newswires(新聞分類:多分類問題 )3.7: Predicting house prices(預測房價:回歸問題)4.4: Underfitting and overfitting( 過擬合與欠擬合)5.1: Introduction to convnets(卷積神經網絡簡介)5.2: Using convnets with small datasets(在小型數據集上從頭開始訓練一個卷積網絡)5.3: Using a pre-trained convnet(使用預訓練的卷積神經網絡)5.4: Visualizing what convnets learn(卷積神經網絡的可視化)

    標簽: python 深度學習

    上傳時間: 2022-01-30

    上傳用戶:

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