Create a Route Sheet for the soft faced hammer. For your reference use File upload (Machine Tool Plans 2020)Directions:Create a Route Sheet for the soft faced hammer . The route sheet should describe the most efficient way to manufacture the soft faced hammer. For your reference, the following File upload (Machine Tool Plans 2020) contains CAD drawings of both the machinist clamp and soft faced hammer. For this assignment your manufacturing facility will have 6 employees

CS370 Computer ArchitectureLab 3Total Points: 150Goal:The purpose of this project is to create Finite State Machine (FSM) which can detect acertain eight-digit binary sequence in a continuous serial binary input stream. When thecorrect sequence is detected, the single output signal should be a logical true value, in allother cases it should be a logical false. This project is designed to allow a gradual transitionfrom strictly combinational circuits to a simple sequential circuit. Note that this labassignment is a group assignment with each group having no more than 2 students. (Youare free to work by yourself.) (You may have a different partner with Lab2.)Problem Statement: The “Gottcha Anti-Theft” MachineThere are many anti-theft devices on the market that attempt to foil a would-be robberfrom starting your car and driving off with it. One popular item has a keypad like a touchtone telephone. In order to start your car, you must key in a secret four-digit decimal code,such as ‘3719’. It only “remembers” the most recent four digits you have keyed in. Thus,the sequence ‘3723719’ will let you start your car.For simplicity here we use a code based on a sequence of eight bits, and use two pushbuttons to enter a sequence serially (as shown in Fig. 1). Each press of a button enters thecorresponding digit. As you key in the bits in sequence, the device outputs E = 0 untilthe most recent eight bits agree with a built-in secret code byte. Then E switches to 1.Fig. 1. The Gottcha machine in action.The shut-off gottcha: If 16 bits are toggled in without the secret code being observed, thesystem shuts off and won’t accept any more bits. Add a RESET button to the system thatpresumably only the owner could control: when RESET is pressed the system is againenabled and can accept bits.Design and test (on LogicWorks) the miracle Gottcha machine. Do this in two differentways (thus designing and simulating two different circuits):• (1) The Factory Preset Model: The specific secret byte preset at the factory MUST beone of your team members’ secret keys. For groups with single member, please useyour assigned secret key. A table of secret key corresponding to each student’s RedIDis attached to this document (see Appendix). You can find your secret key from thetable. All groups, please explicitly explain which key is used for Factory Preset Modelin your readme.txt file. Your group will receive ZERO point if you don’t follow thiskey use policy specified above. Do NOT use registers: solve for the finite state machinewith the fewest states and flip-flops possible.• (2) The User-Programmable Model: This machine allows the car owner to enter asecret byte into a register. The user selects a byte using two hex keyboards, andpresses an ENTERCODE pushbutton to store the code word. Now when the machine isused “in the field”, the car owner enters a sequence using the same pushbuttonarrangement as for the previous machine. When the sequence so entered matches thecode word stored in the register, E goes HIGH (i.e. logical true). As with the FactoryPreset Model, if more than 16 bits are entered without the proper sequence beingobserved, the system shuts off (until RESET is pressed).Some Hints:• (1) These systems have no actual clock – the release of either pushbutton produces atransition that is used to trigger the flip-flops involved. The main flip-flops in the circuitare triggered by this transition.• (2) You might put the outputs of the two pushbuttons into asynchronous inputs of aflip-flop, which therefore instantly stores the value (i.e. informs “which” pushbuttonwas pressed) of the newest input bit. The output of this flip-flop is then used as theactual “input” value.• (3) Use a shift register in Part2 (i.e. the User-Programmable Model) to store the mostrecently received bits. Compare the shift register output to the programmed codeword. (So Part2 is very simple.)Submission Instructions:• Write a readme.txt file that includes (1) your group member names and thecontribution of each member (who did what); (2) list each file enclosed in yoursubmission package and briefly explain its function and usage; (3) explicitly explainwhich key is used for the Factory Preset Model; (4) indicate whether you useLogicWorks installed on remote computers or your own computer (Due to differentLogicWorks versions, the files created through your own installation may not beopened by remote computer installations successfully).• Write a design documentation (.docx or .pdf file) to give a brief description of thedesign process you used to obtain the circuits. Be sure to point out why you chose aparticular design, along with the steps you took to minimize the amount of hardwarerequired in each case.• Your LogicWorks files should include your circuit schematic file (.cct) and your libraryfile (.clf). In your .cct file, please document each section using the Text tool (Ctrl_E)so that we know how it works. Note that documentation is essential for FULL credit.• You MUST include the FINAL TEST circuits for both Part1 (the Factory Preset Model)and Part2 (the Factory Preset Model), like shown on the last two slides of“lec17_Lab3.pdf”.• Zip ALL files into one document and name it with the first initial of your first name andyour last name. For example, student Andrew Jordan’s zip file would beajordan.zip.• Submit your zip file in Canvas. Note that EVERY student is required to submit (thesubmission of two members from the same group should be the same).Appendix: Secret Keys for Factory Preset ModelRedID Secret Key RedID Secret Key821836022 11010101 822493640 11001101819565078 11011101 819420128 11011111823103028 10011001 824071346 11100110811754860 10101111 824856221 00101101822719047 01011001 808772855 01110000819666595 10110110 823324977 11101101819818188 10000100 824243492 01001100822920430 10011011 825449528 01000111819173323 01111110 825538318 01001010819507228 10111010 821009339 11100010823023351 11110110 822774843 10100100823197473 11010100 821911084 11110001821531679 10101011 823233990 10101101821448934 10011111 823005190 01011011819479798 01011000 822598342 01111011821199074 10111111 825221404 01110111820601230 11110010 822687158 10011000822200581 01011101 824474983 11011001822758164 10100111 825643592 00110111822914112 10110000 820821671 00011010823234341 01000010 822791028 01001011822569677 11010111 822246796 01011010819138431 01100011 823022506 10010010823189309 01101010 822288474 11111000820784452 01110001 821539102 01110011815801604 01010111 813668291 11110101822511983 10111100 817551131 11001100818499832 11001110 822492808 01000101825770940 01011100 822202323 01001110825172472 11100011 822201595 01100010825209977 11110000 823510318 11010000812172342 10010100 823306751 10101110825059736 11110011 821699873 01100000822770800 10001001 824348454 11000110822331036 11101010 822808357 10101000822680970 00110110 819202287 11010010

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