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<oembed><version>1.0</version><provider_name>Microsoft Research</provider_name><provider_url>https://www.microsoft.com/en-us/research</provider_url><author_name>Tom Rodeheffer</author_name><author_url>https://www.microsoft.com/en-us/research/people/tomr/</author_url><title>Software Integer Division - Microsoft Research</title><type>rich</type><width>600</width><height>338</height><html>&lt;blockquote class="wp-embedded-content" data-secret="Hw882hX341"&gt;&lt;a href="https://www.microsoft.com/en-us/research/publication/software-integer-division/"&gt;Software Integer Division&lt;/a&gt;&lt;/blockquote&gt;&lt;iframe sandbox="allow-scripts" security="restricted" src="https://www.microsoft.com/en-us/research/publication/software-integer-division/embed/#?secret=Hw882hX341" width="600" height="338" title="&#x201C;Software Integer Division&#x201D; &#x2014; Microsoft Research" data-secret="Hw882hX341" frameborder="0" marginwidth="0" marginheight="0" scrolling="no" class="wp-embedded-content"&gt;&lt;/iframe&gt;&lt;script&gt;
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</html><description>Early computers omitted instructions for integer multiplication and division, requiring these operations to be synthesized in software. Even some modern RISC and DSP architectures are deficient in the case of division. Therefore software methods for performing integer division continue to be of interest. We consider typical architectures based on two&#x2019;s complement binary arithmetic and present [&hellip;]</description></oembed>
