45,186 research outputs found

    Interjurisdictional tax competition for domestic and foreign capital

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    This paper examines the efficient provision of local public goods when jurisdictions compete for both domestic and foreign capital. Capital is freely mobile between jurisdictions in the home country, but capital owners will incur migration costs if investing abroad. Since the supply of foreign capital is not completely elastic, the traditional result of under-provision of local public goods found in the literature on tax competition may not hold. Furthermore, the less mobile that foreign capital is, the more likely it is that foreign capital will be taxed more heavily than domestic capital. If both types of capital are complementary to the locally untaxed labor, then jurisdictions will always tax foreign capital, and they may even subsidize domestic capital if it is sufficiently difficult to move the capital abroad.Tax competition, local public goods, migration costs, capital taxes

    Image mining: issues, frameworks and techniques

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    [Abstract]: Advances in image acquisition and storage technology have led to tremendous growth in significantly large and detailed image databases. These images, if analyzed, can reveal useful information to the human users. Image mining deals with the extraction of implicit knowledge, image data relationship, or other patterns not explicitly stored in the images. Image mining is more than just an extension of data mining to image domain. It is an interdisciplinary endeavor that draws upon expertise in computer vision, image processing, image retrieval, data mining, machine learning, database, and artificial intelligence. Despite the development of many applications and algorithms in the individual research fields cited above, research in image mining is still in its infancy. In this paper, we will examine the research issues in image mining, current developments in image mining, particularly, image mining frameworks, state-of-the-art techniques and systems. We will also identify some future research directions for image mining at the end of this paper

    Image mining: trends and developments

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    [Abstract]: Advances in image acquisition and storage technology have led to tremendous growth in very large and detailed image databases. These images, if analyzed, can reveal useful information to the human users. Image mining deals with the extraction of implicit knowledge, image data relationship, or other patterns not explicitly stored in the images. Image mining is more than just an extension of data mining to image domain. It is an interdisciplinary endeavor that draws upon expertise in computer vision, image processing, image retrieval, data mining, machine learning, database, and artificial intelligence. In this paper, we will examine the research issues in image mining, current developments in image mining, particularly, image mining frameworks, state-of-the-art techniques and systems. We will also identify some future research directions for image mining
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