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keith
Joined: 19 Sep 2005
Posts: 3355
Location: near Detroit, Michigan, USA
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 Posted: Fri Apr 30, 2021 6:35 pm Post subject: I learned something new ... |
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| Code: | +-------+-------+-------+
| 5 . . | . . 8 | . 4 3 |
| . . . | 5 9 4 | . . . |
| 7 1 . | 3 . . | . . . |
+-------+-------+-------+
| . 7 5 | . 4 . | . . 8 |
| . . 6 | . . . | 1 . . |
| 9 . . | . 8 . | 5 2 . |
+-------+-------+-------+
| . . . | . . 3 | . 8 5 |
| . . . | 4 1 7 | . . . |
| 3 6 . | 8 . . | . . 2 |
+-------+-------+-------+ |
Keith |
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dongrave
Joined: 06 Mar 2014
Posts: 568
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| Posted: Sat May 01, 2021 12:56 pm Post subject: |
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After basics:
| Code: | +------------+----------+--------+
| 5 29 29 | 1 7 8 | 6 4 3 |
| 6 38 38 | 5 9 4 | 2 7 1 |
| 7 1 4 | 3 26 26 | 8 5 9 |
+------------+----------+--------+
| 12 7 5 | 9 4 12 | 3 6 8 |
| 248 248 6 | 27 3 5 | 1 9 47 |
| 9 34 13 | 67 8 16 | 5 2 47 |
+------------+----------+--------+
| 14 49 19 | 26 26 3 | 7 8 5 |
| 28 5 28 | 4 1 7 | 9 3 6 |
| 3 6 7 | 8 5 9 | 4 1 2 |
+------------+----------+--------+ |
Then I used the following chain:
(1=2)r4c1 - r8c1 = r8c3 - (2=9)r1c3 - (9=1)r7c3 => r6c3 <> 1; stte.
What did you use to solve it Keith? |
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keith
Joined: 19 Sep 2005
Posts: 3355
Location: near Detroit, Michigan, USA
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| Posted: Sat May 01, 2021 6:34 pm Post subject: |
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After basics (see dongrave's grid above), this puzzle is a BUG+2.
In a BUG, every unsolved cell has two candidates, and each candidate occurs twice in each house (row, column, or box). A BUG does not have a unique solution: It has zero or two solutions (I believe).
| Code: | +-----------------+-------------+-------------+
| 5 29 29 | 1 7 8 | 6 4 3 |
| 6 38 38 | 5 9 4 | 2 7 1 |
| 7 1 4 | 3 26 26 | 8 5 9 |
+-----------------+-------------+-------------+
| 12 7 5 | 9 4 12 | 3 6 8 |
| (2)48 2(4)8 6 | 27 3 5 | 1 9 47 |
| 9 34 13 | 67 8 16 | 5 2 47 |
+-----------------+-------------+-------------+
| 14 49 19 | 26 26 3 | 7 8 5 |
| 28 5 28 | 4 1 7 | 9 3 6 |
| 3 6 7 | 8 5 9 | 4 1 2 |
+-----------------+-------------+-------------+ |
The "+2" candidates are 2 in R5C1 and 4 in R5C1. You can see this by checking the candidates in C1 and then in C2, and noting then that the BUG condition is satisfied also in R5 and B4 if 2 is eliminated in R5C1 and 4 in R5C2.
Now, the correct statement, in this case, for a single unique solution is: R5C1 is 2 AND/OR R5C2 is 4.
(Here I was wrong. I thought the condition is always AND. In nearly 20 years of solving these things, I have never seen a case where the correct choice is OR.)
In either case, R5C1 is not 4 or R5C2 is not 2, and either of these eliminations solves the puzzle. We find R5C1=2 and R5C2=8.
Keith
(Thanks to Leren and Jamil for correcting me in another forum.) |
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ZeroAssoluto
Joined: 05 Feb 2017
Posts: 933
Location: Rimini, Italy
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| Posted: Sun May 02, 2021 12:42 pm Post subject: |
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Hi everyone,
WXYZ-Wing 1,2,3,8 in r268c3,r4c1 and -2 in r8c1
Ciao Gianni |
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immpy
Joined: 06 May 2017
Posts: 571
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| Posted: Mon May 03, 2021 3:10 pm Post subject: |
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Thanks Keith. Great clarification of the rare BUG+2 phenomenon. I had not been able to do much with them until now.
cheers...immp |
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immpy
Joined: 06 May 2017
Posts: 571
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| Posted: Mon May 03, 2021 3:16 pm Post subject: |
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Question: Will this only work when the BUG cells see each other, or can it be applied in any case?
Thanks in advance for any enlightenment. |
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keith
Joined: 19 Sep 2005
Posts: 3355
Location: near Detroit, Michigan, USA
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| Posted: Mon May 03, 2021 7:52 pm Post subject: |
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| immpy wrote: | Question: Will this only work when the BUG cells see each other, or can it be applied in any case?
Thanks in advance for any enlightenment. |
immpy,
The process is to identify the candidates which if eliminated will leave a BUG. That is, every unsolved cell is a bivalue, and each unsolved digit occurs twice in each row, column, and box. Then, one (or more) of those candidates must be true.
How that plays out I think depends on the particular puzzle. I'll try to find more examples.
Keith |
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immpy
Joined: 06 May 2017
Posts: 571
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| Posted: Tue May 04, 2021 2:51 pm Post subject: |
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I got it Keith. And it would depend on the particular puzzle. Thanks.
cheers...immp |
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