haas:spring2014:cprog:projects:dayofweek
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| haas:spring2014:cprog:projects:dayofweek [2014/01/17 08:01] – [Squaring a value] wedge | haas:spring2014:cprog:projects:dayofweek [2014/02/06 17:39] (current) – [Reflection] wedge | ||
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| + | <WRAP centeralign round box> | ||
| + | < | ||
| + | < | ||
| + | </ | ||
| + | |||
| + | ~~TOC~~ | ||
| + | |||
| ======Project: | ======Project: | ||
| - | A project for C/C++ Programming. | ||
| =====Objective===== | =====Objective===== | ||
| To implement a programmatic solution (ie simulation) of a real life process- the mental math trick of determining what day of the week January 1 of any given year (in the 21st century) falls on. | To implement a programmatic solution (ie simulation) of a real life process- the mental math trick of determining what day of the week January 1 of any given year (in the 21st century) falls on. | ||
| - | =====Prerequisites===== | + | ======Assumptions====== |
| + | |||
| + | To assist you in completing this project, you may make the following assumptions: | ||
| + | |||
| + | * all requests will be for days in the 21st century (2000-2099) | ||
| + | =====Prerequisites/ | ||
| In addition to the new skills required on previous projects, to successfully accomplish/ | In addition to the new skills required on previous projects, to successfully accomplish/ | ||
| Line 19: | Line 30: | ||
| ^ Monday | ^ Monday | ||
| - | | 1 | 2 | 3 | 4 | 5 | 6 | 7 | | + | | 1 | 2 | 3 | 4 | 5 | 6 | 7 or 0 | |
| - | Alternatively, | + | ====Calculating day of the week based on year==== |
| - | ====Squaring double digit values ending with 5==== | + | |
| - | The trick here is two-fold. | + | |
| - | One, we square | + | Okay, time for the magic. |
| - | Next, we take the value in the tens place, and multiply it by its increment: | + | Let us try it on January 1st, 2014. |
| - | * 1's increment (1+1) is 2, so 1*2 | + | ===Step |
| - | * 2's increment (2+1) is 3, so 2*3 | + | In our example, we're working with 2014, the last two digits are therefore: 14 |
| - | * 3's increment (3+1) is 4, so 3*4 | + | |
| - | * 4's increment (4+1) is 5, so 4*5 | + | |
| - | * ... | + | |
| - | * 9's increment (9+1) is 10, so 9*10 | + | |
| - | We take this result and append the 25 after it. | + | You should be able to come up with a means of extracting |
| - | For example: | + | ===Step 2: Compute 25% (drop the decimal)=== |
| + | Even this is something we can do in our heads. I can think of two approaches right off the bat: | ||
| - | < | + | ==Approach |
| - | 15 * 15 = 1*(1+1) 5*5 | + | 10% percent of anything is merely dropping the last digit. 10% of 54 is 5. |
| - | | + | |
| - | | + | |
| - | = 225 | + | |
| - | </ | + | |
| - | and: | + | For our 2014 example, 10% of 14 is therefore 1. |
| - | < | + | So we need two 10 percents... 1.4 + 1.4 = 2.8 |
| - | 75 * 75 = 7*(7+1) 5*5 | + | |
| - | | + | |
| - | = 56 25 | + | |
| - | = 5625 | + | |
| - | </ | + | |
| + | Finally, 5% is half of 10% (half of 1 is 0.5), so 1.4 + 1.4 + 0.5 = 3.3 | ||
| + | |||
| + | But, since we do not care about the decimal, we drop it and are left with just 3. | ||
| + | |||
| + | ==Approach 2: half of half== | ||
| + | 25% is a convenient value for us with respect to 100, allowing this optimized approach to work. | ||
| + | |||
| + | * Half of 100 is 50 (50%) | ||
| + | * Half of 50 is 25 (25%) -- hence the "half of half" | ||
| + | |||
| + | So, 14 cut in half is 7. | ||
| + | |||
| + | 7 cut in half is 3.5. | ||
| + | |||
| + | Once again, dropping the decimal yields 3. | ||
| + | |||
| + | ===Step 3: Add 25% to year value=== | ||
| + | Once we have our 25% value, go and add it back to our two-digit year value: | ||
| + | |||
| + | 14 + 3 = 17 | ||
| + | |||
| + | ===Step 4: Subtract the largest fitting multiple of 7=== | ||
| + | |||
| + | Some multiples of 7: | ||
| + | |||
| + | | 0 | 7 | 14 | 21 | 28 | 35 | 42 | 49 | | ||
| + | |||
| + | So, with a value of 17, what is the largest multiple of 7 that is still less than (or equal to) 17? | ||
| + | |||
| + | Hopefully you identified the 14 as the likely candidate. | ||
| + | |||
| + | 17 - 14 = 3 | ||
| + | |||
| + | ===Step 5: Look up day in table=== | ||
| + | We ended up with a 3 as the result for January 1st, 2014. | ||
| + | |||
| + | Go and reference the 3 from that table... what day do we get? Does it match the actual day of the week for January 1st, 2014? | ||
| + | |||
| + | <cli> | ||
| + | lab46:~$ cal 01 2014 | ||
| + | January 2014 | ||
| + | Su Mo Tu We Th Fr Sa | ||
| + | 1 2 3 4 | ||
| + | | ||
| + | 12 13 14 15 16 17 18 | ||
| + | 19 20 21 22 23 24 25 | ||
| + | 26 27 28 29 30 31 | ||
| + | |||
| + | lab46: | ||
| + | </ | ||
| + | |||
| + | Pretty neat, eh? | ||
| + | |||
| + | ====Exception: | ||
| + | In the event of a leap year, we simply subtract 1 from the 25% value, and continue on as usual. | ||
| + | |||
| + | Makes sense, right? Leap years add a day, so something ends up being "off by one". | ||
| =====Program===== | =====Program===== | ||
| - | It is your task to write the program that will use the above method to compute | + | It is your task to write the program that will use the above method to determine |
| Your program should: | Your program should: | ||
| - | * prompt the user for the number | + | * prompt the user for the four digit year (input) |
| * perform the task (process) | * perform the task (process) | ||
| * display the final value (output) | * display the final value (output) | ||
| Line 67: | Line 121: | ||
| <cli> | <cli> | ||
| - | lab46: | + | lab46: |
| - | Enter value: 75 | + | Which year: 2014 |
| - | 75 x 75 = 5625 | + | January 1st, 2014 falls on: Wednesday |
| - | lab46: | + | lab46: |
| </ | </ | ||
| Line 78: | Line 132: | ||
| Be sure to provide any commentary on your opus regarding realizations had and discoveries made during your pursuit of this project. | Be sure to provide any commentary on your opus regarding realizations had and discoveries made during your pursuit of this project. | ||
| - | * Does this trick work (or can it be adapted to work) for three digit values ending with 5? | + | * 2000 by definition isn't a leap year, but how does this algorithm |
| - | * How about 4 digits? | + | * Try this algorithm on some years in the 20th century and see how it fares. |
| + | * Is it correct? Is it correct for any of them? | ||
| + | * If it isn't correct, is it consistently off by a value? | ||
| + | This isn't just about implementing a particular algorithm, it is about understanding an algorithm- its domain of correctness, | ||
| =====Submission===== | =====Submission===== | ||
| To successfully complete this project, the following criteria must be met: | To successfully complete this project, the following criteria must be met: | ||
| Line 98: | Line 155: | ||
| <cli> | <cli> | ||
| - | $ submit cprog squares squares.c | + | $ submit cprog dayofweek dayofweek.c |
| - | Submitting cprog project "squares": | + | Submitting cprog project "dayofweek": |
| - | -> squares.c(OK) | + | -> dayofweek.c(OK) |
| SUCCESSFULLY SUBMITTED | SUCCESSFULLY SUBMITTED | ||
| Line 107: | Line 164: | ||
| You should get some sort of confirmation indicating successful submission if all went according to plan. If not, check for typos and or locational mismatches. | You should get some sort of confirmation indicating successful submission if all went according to plan. If not, check for typos and or locational mismatches. | ||
| - | ====Verify submission==== | ||
| - | To verify you submitted successfully, | ||
| - | |||
| - | <cli> | ||
| - | lab46:~$ verify cprog squares | ||
| - | squares: submitted successfully | ||
| - | </ | ||
| - | Note if automated assessment is available for the project, you may actually see results in the output as well. | ||
haas/spring2014/cprog/projects/dayofweek.1389945703.txt.gz · Last modified: 2014/01/17 08:01 by wedge
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