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Sunday, May 17, 2009

From Queen Song to Better Music Search Engine

At a recent technology conference, University of California San Diego electrical engineers presented a solution to their problem with the song "Bohemian Rhapsody,"—and it's not that they don't like this hit from the band Queen. The electrical engineers' issue with "Bohemian Rhapsody" is that it is too heterogeneous. With its mellow piano, falsetto vocals, rock opera sections and crazy guitar solos, "Bohemian Rhapsody" is so internally varied that machine learning algorithms at the heart of their experimental music search engine have trouble labeling the song.

The solution presented at the 2009 International Conference on Acoustics, Speech, and Signal Processing (ICASSP) in Taiwan could lead to improvements in the electrical engineers' song labeling and search engine system.

The system "listens" to songs it has never heard before, labels them based on the actual sounds in the song, and then retrieves songs, as appropriate, when people type descriptive words—like "mellow jazz"—into the team's experimental search engine.

At ICASSP, UC San Diego electrical engineering Ph.D. student Luke Barrington presented a new model for music segmentation that can capture both the sound of a song and how this sound changes over time. By modeling music in this way, Barrington showed how to automatically segment songs such as "Bohemian Rhapsody" into homogenous sections such as verses, choruses and bridges. This new approach to training computers to dissect songs into heterogeneous segments and then accurately label each chunk could improve the accuracy of the new music search engine built by engineers from the Jacobs School of Engineering at UC San Diego.

The team's nickname for their experimental music search engine is "Google for music." Users type descriptive words—rather than song titles, album names or artist names—and the search engine returns specific song suggestions. The engine currently works for more than 100 words that cover music genres, emotions and instruments. The Jacobs School engineers are working to expand the search engine's "vocabulary" before opening it up to the public later this year.

Teaching Computers to Label Songs

In order to "teach" the search engine new words, the engineers need to show it many different examples of songs that fit that description. Initially, the engineers paid UC San Diego undergraduates to manually label songs that would serve as training materials for machine learning algorithms. But instead of continuing to rely on this expensive option, the engineers built online music games that encourage people connected via the Internet to do the song labeling while listening to music online.

In April, the electrical engineers launched their games on Facebook as an application called Herd It.

To play Herd It, log in to Facebook, open the Herd It app, select a genre of music, and start listening to song clips and playing the games. Some games ask users to identify instruments, while others focus on music genres, artist names, emotions triggered by the song, and activities you might do while listening to a song. The more your answers align with the rest of the online crowd playing the game at the same time, the more points you score.

"The Facebook games are a lot of fun and a great way to discover new music. At the same time, the games deliver the data we need to teach our computer audition system to listen to and describe music like humans do," says Gert Lanckriet, the electrical engineering professor and machine learning expert from the Jacobs School of Engineering steering the project. Lanckriet also leads UC San Diego's Computer Audition Laboratory, housed at the UC San Diego division of Calit2.

For the system to "listen and describe music like a human," it must find patterns in the songs using the tools of machine learning. For example, for the system to learn to identify and label romantic songs, it must be exposed to many different romantic songs during the training period.

This exposure enables the machine learning algorithms find patterns in the wave forms of the songs that make the songs romantic. Once trained, the system can identify romantic songs that it has never before encountered, offering the tantalizing possibility of amassing a huge database of songs that can be tagged and retrieved based on text-based searches with no human intervention.

"The more examples of romantic songs our search engine is exposed to, the more accurately it will be able to identify romantic songs it has never heard before," says Barrington.

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Monday, October 13, 2008

Search Your Neighborhood

We all know how great the Internet is to search and find information and places across the globe. It's funny, then, however, that often the Internet is not always very useful when you try find something right down the street.

You might live in Springfield, say, and you're looking for the phone number of a local pizza joint. You type it all in, only to find a pizza place in Springfield, but a Springfield in a whole different state.

That's where Local.com comes in. It helps you narrow down your results to find only what's relevant in your town or neighborhood. Restaurants, in your town, are ranked and reviewed by how many stars they have, for instance.

Perhaps you own a highly localized business, such as a restaurant, dentist, or contractor business and have been trying to find a way to use the Internet to advertise effectively. Visit Local.com and see how it could bring more of your neighbors to your establishment.

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Saturday, February 16, 2008

Use Wiki Power To Find The Best Online Deals

Remember the old days when online shopping meant visiting just a handful of websites to find the item or product you were looking for?

Well, those days are long gone and the Internet has proliferated with e-commerce websites of all different varieties, level of quality and price-points.

The power of ShopWiki is to power through all of those sites to provide you with the ability to easily comparison shop and find the best deal for you -- whether your goal is to search for low prices or more selection.

Indexing more than 200,000 stores and more than 250 million products -- yes, 250 million -- ShopWiki boasts itself as the largest online shopping search engine.

Whether you are looking to buy automotive products, luggage, or a pair of jeans -- visit ShopWiki first.

This post was brought to you by your friends at ShopWiki.com.

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Wednesday, December 19, 2007

Video: Search Engine Raises Money For Your Favorite Charity

DarynKagan.com brings you the inspiring story behind GoodSearch.com, the search engine that helps you raise money for your favorite charity with every search.

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Wednesday, November 14, 2007

MIT Lecture Search Engine Aids Students

Imagine you are taking an introductory biology course. You're studying for an exam and realize it would be helpful to revisit the professor's explanation of RNA interference. Fortunately for you, a digital recording of the lecture is online, but the 10-minute explanation you want is buried in a 90-minute lecture you don't have time to watch.

A new lecture search engine developed at MIT's Computer Science and Artificial Intelligence Laboratory (CSAIL) could help with this dilemma. Created by a team of researchers and students led by MIT associate professor Regina Barzilay and principal research scientist James Glass, the web-based technology allows users to search hundreds of MIT lectures for key topics.
"Our goal is to develop a speech and language technology that will help educators provide structure to these video recordings, so it's easier for students to access the material," says Glass, who is head of CSAIL's Spoken Language Systems Group.

More than 200 MIT lectures are currently available on the site (web.sls.csail.mit.edu/lectures/). So far, most of the users are international students who access the lectures through MIT's OpenCourseWare (OCW) initiative, which makes curriculum materials for most MIT courses available to anyone with Internet access. Although the lecture-browsing system is still in the early development stages, a recent announcement in OCW's newsletter has drawn increased traffic to the site.

Barzilay and Glass expect the system will be most useful for OCW users and for MIT students who want to review lecture material. MIT World, a web site that provides video of significant MIT events such as lectures by speakers from MIT and around the world, is also participating in the project.

Many MIT professors record their lectures and post them online, but it's difficult to search them for specific topics. Because there is no way to easily scan audio, as you can with printed text, "you end up watching the whole thing, and it's hard to keep focused," says Barzilay, the Douglas T. Ross Career Development Associate Professor of Software Development in the Department of Electrical Engineering and Computer Science.

On the prototype web site, users can search lectures for any term they want and then play the relevant sections.

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Saturday, July 28, 2007

Video: Interview With Technorati Vice President

Technorati is at the heart of that fabled place, the "Blogosphere."

Based in San Francisco and founded by David Sifry, Technorati is the Google of the blogs, performing as a search engine for more than 75 million weblogs, according to one estimate.

Today Technorati finds itself competing with Google and Yahoo for blog search.

Watch this interview with Derek Gordon, vice president of marketing at Technorati:



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Tuesday, March 27, 2007

The Top of Search Engines

When you type a search term into the Internet, how many pages are you willing to look at it? Are you willing to advance from page to page to page in hopes of finding something?

Probably not. And I can tell you from personal experience how important it is to get on top of the Google, Yahoo and other search engine rankings.

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Studies have shown that as little as 30% of all search engine users click on sponsored listings. This means up to two times as many people prefer to click on the “free” listings. Improving rankings within the natural (non-sponsored) listings is their specialty.

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What makes them different?A majority of its fees goes toward external link building efforts, where they get other quality websites, directories and blogs (relevant as possible) to consider adding one-way links pointing back into to your website.

Today, Google and other major search engines heavily rely on incoming links from quality websites and the words attached to those links (anchor text) as the number one deciding factor in who ranks above whom. The very heart of Google’s ranking process is their PageRank system that measures your overall link popularity, as well as the websites who are providing the links.

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