PPT-Lecture 13 Greedy algorithms!

Author : yoshiko-marsland | Published Date : 2018-11-28

Announcements I am not Prof Rubinstein He will be back next week My name is Mary Wootters New HW posted today Roadmap Sorting Graphs Longest Shortest Max and Min

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Lecture 13 Greedy algorithms!: Transcript


Announcements I am not Prof Rubinstein He will be back next week My name is Mary Wootters New HW posted today Roadmap Sorting Graphs Longest Shortest Max and Min Data structures Asymptotic Analysis. 1.204 Lecture 10 K k ( i t l b d t i ) K napsac k ( cap it a l b u d ge ti ng ) Job scheduling  Greedy method • Local im p p rov l in man y cases w h ere • Objecti v es Optimization problems, Greedy Algorithms, Optimal Substructure and Greedy choice. Learning & Development Team. http://academy.telerik.com. . Telerik Software Academy. Table of Contents. Optimization Problems. CIS 606. Spring 2010. Greedy Algorithms. Similar to dynamic programming.. Used for optimization problems.. Idea. When we have a choice to make, make the one that looks best . right now. . Make . a locally . Yuli. Ye . Joint work with Allan Borodin, University of Toronto. Why do we study greedy algorithms? . don’t. A quote from Jeff Erickson’s algorithms book. . Everyone should tattoo the following sentence on the back of their hands, right under all the rules about logarithms and big-Oh notation. to . Greedy Routing Algorithms . in Ad-Hoc Networks. ○. Truong . Minh . Tien. Joint work with. Jinhee. . Chun, . Akiyoshi. . Shioura. , . and Takeshi . Tokuyama. Tohoku University. Japan. Our . Problem. Hamed Pirsiavash, Deva . Ramanan. , . Charless. . Fowlkes. Department of Computer Science, UC Irvine. 2. Estimate number of tracks and their extent. Do not initialize manually. Estimate birth and death of each track. The two key components. Optimal Sub-structure. You solve the problem by solving a sub-problem optimally. Greedy Property. Using the choice that seems best at the moment leads to the optimal result. This is tougher to show!. Jingtao Zhu. May 13rd,2016. “Efficient Influence Maximization . in Social Networks. ”. . Written by Chen Wei, Yajun Wang, and Siyu Yang. . Proceedings of the 15th ACM SIGKDD international conference on Knowledge discovery and data mining. Announcements. I am not Prof. Rubinstein. He will be back next week. My name is Mary Wootters. New HW posted today!. Roadmap. Sorting. Graphs!. Longest, Shortest, Max and Min. …. Data structures. Asymptotic Analysis. CSE 421 Greedy Algorithms / Interval Scheduling Yin Tat Lee 1 Interval Scheduling Job starts at and finishes at . Two jobs compatible if they don’t overlap. Goal: find maximum subset of mutually compatible jobs. Fall 20151 Week . 7. CSCI-141. Scott C. Johnson. Say we go to the bank to cash our paycheck. We ask the teller for the fewest bills and coins as possible. Moments later the teller gives us our money and we leave. Minimum spanning tree (MST). Single source shortest path (SSSP), e.g., Dijkstra’s algorithm. We will explore the main properties, with focus on theoretical foundations. MST:. Graph G(V,E): undirected, connected, weighted (arbitrary real weights w() on edges). Instructor. : . S.N.TAZI. . ASSISTANT PROFESSOR ,DEPTT CSE. GEC AJMER. satya.tazi@ecajmer.ac.in. 3. -. 2. A simple example. Problem. : Pick k numbers out of n numbers such that the sum of these k numbers is the largest.. and SMA*. Remark: SMA* will be covered by Group Homework Credit Group C’s presentation but not in Dr. . Eick’s. lecture in 2022. Best-first search. Idea: use an . evaluation function. . f(n) . for each node.

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