Math Is Fun Forum
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#1 Re: Maths Is Fun - Suggestions and Comments » Math Entry Test » 2025-09-29 00:24:42
Oh, I thought you had cracked it. Longer standing Members with existing avatars continue to have them after the upgrade. More recent members find nothing happens when they follow the instructions.
Bob
#2 Re: Maths Is Fun - Suggestions and Comments » Math Entry Test » 2025-09-29 00:19:16
hi Ganesh,
No cause for concern. ktesla39 and I have been trying to find a way to protect the forum from spammers. He has made a copy that he can experiment with without any threat to MIF. Note. He has already found a way to create an Avatar.
I've updated MIF about this.
Bob
#3 Re: Maths Is Fun - Suggestions and Comments » Math Entry Test » 2025-09-28 02:52:34
Test post.
https://www.google.com/
https://www.mathsisfun.com/data/function-grapher.html
https://www.bbc.co.uk/
math
math
https://www.google.com/ https://www.mathsisfun.com/data/function-grapher.html https://www.bbc.co.uk/
https://www.google.com/https://www.mathsisfun.com/data/function-grapher.htmlhttps://www.bbc.co.uk/
I can stop multiple posting if the hyperlinks are all on one line but not if there's a newline between them. 
Actually I cannot stop them even then as the last two show.
Bob
#4 Re: Maths Is Fun - Suggestions and Comments » Math Entry Test » 2025-09-26 04:37:35
Every day I have to remove members who only joined so they can advertise on our site. It's a lot harder to do if the person uses a guest post rather than a member post so I have configued the guest group so they cannot do this. Sad but necessary or we'd become overwhelmed by rubbish, much of it downright offensive.
It would be wonderful if there was a mechanism that imposed some sort of post restriction on new members, but, as far as I can think, the only way for a new member to qualify would be to make posts, so I'm in a Catch 22 here. Suggestions welcome.
Bob
#5 Re: Maths Is Fun - Suggestions and Comments » More Math Forums By Category » 2025-09-20 19:55:47
I'm always happy to consider such suggestions. In a previous post a member suggested adding 13 more (sub)forums to the list. At the moment there are 16. Is it really helpful to add so many new ones. Also several of the suggestions are specific to the USA curriculum. I could add another 5 or 6 that occur in the UK curriculum. It seems to me that just makes it harder, not easier, to get the help you need.
When anyone posts on Help Me they are advised (if they read the sticky note at the start of the forum) to explain clearly what is causing the difficulty and to make it clear what pre-knowledge the poster has. That has always worked in the past and allows posters to ask for help across a huge range of topics. Along with college/school questions, we've had posts about rotations of a lathe, geo-games puzzles and cracking safe codes (no the poster wasn't trying to rob a bank!).
The link provided by Ganesh leads to the main teaching site where there's plenty of ways to find the exact topic including cross-links between topics. On the Maths Teaching Resources forum there are many good links to specific topics. and you can use the search facility to find specific posts. Isn't all that enough?
Bob
#6 Re: Introductions » Hello mathisfunforum » 2025-09-13 08:12:04
Welcome!
I joined in 2010 and I'm still learning 
Bob
#7 Re: Introductions » Hello Math Is Fun! » 2025-09-12 09:24:50
Hi GretaJKelly,
Welcome to the forum.
The maths teaching pages that Ganesh has provided links are a great place to start. Have a look; try doing some of the test questions at the bottom of each page and then post back here with details of how you are getting on and ask for more specific help. I'll try to answer any queries you have.
Bob
#8 Re: Maths Is Fun - Suggestions and Comments » Credible place to find help and infromation » 2025-08-28 21:17:04
hi Zach,
That's a reasonable question to ask but, interestingly, no one ever has, before you.
I have a maths degree and have taught maths and computing throughout my career. I was a head of department for a while.
I only answer questions when I'm reasonably confident I can answer correctly. But, as with anything you get from the internet, you have to weigh up its accuracy. I am always willing to add more detail to my posts, so, if you want to consider a proof in more detail, I'll always be willing to do that.
Sometimes, when no one has come up with a response and my own knowledge is nil, I'll 'google it' and provide any link that looks helpful. There have been occasions when I have no knowledge of what the poster is after but still think I can help in which case a long dialogue may ensue. As an example, some years back a Canadian asked for help with drilling a hole in a piece of timber. It took several posts to establish that he had the timber mounted in a lathe and could adjust the angles in several ways. He wanted to drill at a certain angle after he had made two rotations about different axes. I taught him three dimensional vector geometry and, in particular, how to apply a rotation matrix to coordinates. With that he was able to do the calculations and make his hole on a test piece. It worked!
There's one problem that was posted years ago which no one could fully answer. One route to an answer seemes to be via contour integration although there's a big step with the algebra needed first. I asked my son to help because he is a much better mathematician than me, and he did that missing step with the algebra (in his head!) I've still got the problem in my subscription list and I hope to complete it one day soon. 
Bob
#9 Re: Help Me ! » A lovely question » 2025-08-08 22:04:43
I knew that. A false result can only be obtained by incorrect working.
Bob
#10 Re: Help Me ! » A lovely question » 2025-08-08 05:47:01
hi Exist,
Welcome to the forum.
I need another proof first; then, it's easy!
Let a = b
then
Factorise:
Cancel the common factor (a-b)
Now to tackle your question:
Let a = b = 1 then
1 + 1 = 1
But 1 + 1 = 2 => 1 = 2
Now add 1 to each side
1 + 1 = 2 + 1 = 3 QED.
He then went on to prove that black = white and got run over crossing the road on a black/white crossing!
Bob
#11 Re: Help Me ! » Coordinate Geometry Question » 2025-08-07 05:53:48
I think this is the diagram:
From d to e is 8 units so the midpoint is 4 from either end. So you can use Pythagoras to find the radius.
Bob
#12 Re: Help Me ! » A simple question2 » 2025-07-29 03:10:59
I had my doubts about BBC Basic being able to handle nested function calls, but it worked better than I had hoped:
5 count = 0
10 INPUT x
20 y = FNf(x)
30 PRINT x," ",y
40
50
60 DEF FNf(x)
65 count = count + 1:PRINT "x="x,"count="count
70 IF x<0 THEN = -x ELSE = 0.5*FNf(x-FNf(x-1))
I used it to confirm my table in Excel:
The cells highlighted in yellow I'm fairly sure are correct.
The accuracy may drop off where the number of iterations is large.
Tried x = 3 without much hope. Gave up waiting at count = 100000.
Bob
#13 Re: Science HQ » Physics: Kinetic Energy » 2025-07-27 05:50:13
Good question! KE must be relative. When we do the drop from height h PE = mgh = KE half mv^2 we don't take account of the Earth moving through space nor its rotation .
Bob
#14 Re: Help Me ! » A simple question2 » 2025-07-23 07:55:18
The correct answer:
2^-1541023937
I've been working on this since you posted it.
If x is negative, it's easy to work out f(x).
When positive each f(x) depends on f(x-1) so I reasoned that it should be possible to create a chain of f(y) where each y is smaller than the one before so that eventually y is negative and we can work that one out and hence all those in the chain.
On paper I kept making errors so I put the whole lot into a spreadsheet with a LOOKUP table with 2 columns, x and f(x)
That spreadsheet is growing and growing as the chains get longer and longer. MS Excel is not very kind to me. If I use the lookup for an x that isn't yet in the table, Excel gives me the nearest value anyway rather than saying it cannot do it. As a result I'm having to check everything by hand anyway. At the moment my table has 26 entries and I think there's some errors.
I'm considering writing a program with a subprocedure that creates the chain. That way I should be able to get correct answers and may have an answer to your puzzle sometime in the next two weeks.
Great puzzle! Simple? No it isn't! 
Bob
#15 Re: Help Me ! » Surds » 2025-07-22 18:41:16
hi paulb203
Imgur can only show the image you uploaded, so you must have muddled up which one you sent. Not to worry though; I found the large size easier to read.
On the first line the 6 - root 8 should be in a bracket, but that hasn't led to an error as you proceeded as if it was there. All the way down that working is good, but when you go up to column two the next line is wrong. Somehow you've not collected the root 2 terms and the number terms correctly.
Bob
#16 Re: Help Me ! » Geometry; similar shapes » 2025-07-16 21:30:40
That's what I got!
Bob
#17 Re: Computer Math » Check if your data follows a normal distribution (no code, free tool) » 2025-07-16 21:29:11
hi Notnormal
Welcome to the forum.
Thanks for the link.
I tried it with some data from the MIF teaching page on the normal dist. and it worked ok.
Bob
#18 Re: Help Me ! » Geometry; similar shapes » 2025-07-15 19:47:53
We have a slightly different way of tackling this question. It comes to the same thing, but my way shows how I got two answers.
When I have two triangles that are similar I write them like this:
AEB
ADC
What this means is that A is common to both; D is the enlargement of E and C is the enlargement of B.
The ratio of a side in the larger to the matching side in the smaller will be equal to the ratio of another pair. (equals the enlargement factor)
ie. AC/AB = AD/AE. This leads to your calculation and hence solves for x.
But that assumes that CD is parallel to BE. It looks right but the question doesn't specifically say so.
A is obviously common but maybe angle ACD = AEB which still leads to similar triangles but with the second answer.
My notation for this case is
ACD
AEB
Now I can pick out the alternative ratios
AC/ AE = AD/AB
and form a second equation for x.
Bob
#19 Re: Help Me ! » 100% simple question! » 2025-07-15 00:27:29
Best to leave this here now that a long chain of posts has resulted. Just to summarise:
Help me: If you are in need of help with a question or topic.
Exercises: If you want to challenge others with a maths question.
Puzzles and games: Could be a puzzle but it could also be telling members about a new game you've discovered.
Bob
#20 Re: Help Me ! » Geometry; similar shapes » 2025-07-15 00:17:08
That's what I did at first.
But the question doesn't say that ADC is an enlargement of AEB, just that the triangles are similar.
So it could be that ACD is an enlargement of AEB. That leads to a second scale factor and hence answer for x.
Important lesson for any maths question with a diagram: Don't make assumptions because of the way the diagram has been drawn.
Bob
#21 Re: Help Me ! » A simple question » 2025-07-12 03:21:18
Hope the exam goes well for you.
'Optional'. Hhhmmm! Interesting!
Bob
#22 Re: Help Me ! » A simple question » 2025-07-12 00:30:35
#23 Re: Science HQ » Physics; conservation of energy » 2025-07-11 23:59:52
Work done and energy are different ways to measure the same thing.
If a mass, m, is accelerated from rest to a velocity v then (using v^2 = u^2 + 2as)
(u=0) = force times distance moved.If an object drops from rest under gravity a distance h, then
mgh is a measure of its potential energy (PE) before it is released.
Bob
#24 Re: Science HQ » Physics; conservation of energy » 2025-07-11 00:35:08
Not roughly correct; but rather, completely correct. The stored gravitational energy at the top is called potential energy and the energy of movement is called kinetic energy.
Bob
#25 Re: Help Me ! » A simple question » 2025-07-10 22:05:28
hi hypsin_0
Who set the question? And did they expect you to produce an answer straight away, or was research allowed?
Maybe they just wanted to show you that maths has lots of interesting branches.
Taylor hasn't given me an ideas yet. The Taylor series expansion has increasing powers (to infinity) and your problem just has 4th powers. Mmmm???
Bob