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Author Boolean Algebra
cdcool1
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Registered: 9th Jun 02
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18th Mar 04 at 16:59   View User's Profile U2U Member Reply With Quote

Is anyone any good at it?? I've got 3 different equations which i've simplified as much as i can and i cant get them any further but i'm sure they will simplify more.

Cant be arsed to post them up if no-one knows it, so if someone does, then i'll type them up

Craig6682
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Registered: 8th Apr 03
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18th Mar 04 at 17:05   View User's Profile U2U Member Reply With Quote

I have to do this at uni but i haven't got a clue. Gonna have to blag the exam some how

Sorry mate!
RichR
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Registered: 17th Oct 01
Location: Waterhouses, Staffordshire
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18th Mar 04 at 17:07   View Garage View User's Profile U2U Member Reply With Quote

as in boolean equations - I mightbe able to help - did them last year as part of my engineering maths - so if u can be arsed stick them up I might be arsed give them a go
Dan B
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Registered: 25th Feb 01
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18th Mar 04 at 17:16   View User's Profile U2U Member Reply With Quote

Boolean logic, I got asked the following question for my interview for my current job:

Source IP: 1.2.3.4
Subnet: 255.255.255.240
Gateway:1.2.3.10
Destination: 1.2.3.20

Using Boolean logic, set up a logic-statement of the following format to prove if the destination is on the same subnet as the source:

if ( <something> = <something else> )
then: destination is local
otherwise: destination is remote

Solved it, eventually, despite not having done Boolean for about 5 years!
cdcool1
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Registered: 9th Jun 02
Location: Scunny
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18th Mar 04 at 17:30   View User's Profile U2U Member Reply With Quote

ok, this is what i've got, more or less straight from the karnaugh (sp) mapping

i know that i can group some, but i think there are some simplifications that can be done other than grouping:

ok, there is no way i can do a "NOT" function in the normal way, so i've used an underline, instead of a line on the top.....

Qa is one term, Qb is one term, Qc is one term


Dc = Qa.Qb.Qc + A.R.Qa + A.Qa + Qa.Qc

Db = A.B.R.Qa.Qb.Qc + A.B.R.Qb.Qc + B.R.Qa.Qb.Qc + R.Qb

In the third one, i've used (+) as EXOR (exclusive OR)

Da = A.B.R.Qa.Qb + B.R.Qc + A.B.R.Qa + B.R.(Qa(+)Qc) + A.B.R.Qb
cdcool1
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18th Mar 04 at 17:40   View User's Profile U2U Member Reply With Quote

and then there was silence
cdcool1
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18th Mar 04 at 17:56   View User's Profile U2U Member Reply With Quote

ttt
groom
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18th Mar 04 at 18:20   View User's Profile U2U Member Reply With Quote

quote:
Originally posted by cdcool1
ok, this is what i've got, more or less straight from the karnaugh (sp) mapping

i know that i can group some, but i think there are some simplifications that can be done other than grouping:

ok, there is no way i can do a "NOT" function in the normal way, so i've used an underline, instead of a line on the top.....

Qa is one term, Qb is one term, Qc is one term


Dc = Qa.Qb.Qc + A.R.Qa + A.Qa + Qa.Qc

Db = A.B.R.Qa.Qb.Qc + A.B.R.Qb.Qc + B.R.Qa.Qb.Qc + R.Qb

In the third one, i've used (+) as EXOR (exclusive OR)

Da = A.B.R.Qa.Qb + B.R.Qc + A.B.R.Qa + B.R.(Qa(+)Qc) + A.B.R.Qb


6?
cdcool1
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Registered: 9th Jun 02
Location: Scunny
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18th Mar 04 at 18:41   View User's Profile U2U Member Reply With Quote

almost

i've found a program on the net that does it all for you and its freeware too

cant install it on uni computers tho, so will do it when i get home
AdiSRI
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Registered: 1st May 02
Location: Berkshire
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18th Mar 04 at 19:19   View User's Profile U2U Member Reply With Quote

i did that in my first year at uni, cant remember anything about it now tho.
NormSXi
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Registered: 26th Sep 03
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18th Mar 04 at 22:34   View User's Profile U2U Member Reply With Quote

You done it yet then?? I might have a go 2moro at/after work mate, i think i can still remember stuff, there are obvious groupings, the K - map should do most of the minimisation tbh..
vibrio
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Registered: 28th Feb 01
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18th Mar 04 at 22:44   View User's Profile U2U Member Reply With Quote

I'll stick to my DNA and proteins

 
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