The class marks are $1,3,5,7,9,11,13$. Compute $\sum f_ix_i=1(1)+2(3)+1(5)+5(7)+6(9)+2(11)+3(13)=162$, and $\sum f_i=20$. Hence mean $\bar{x}=\dfrac{162}{20}=8.1$.
The mean number of plants per house is $8.1$ plants. The direct method is convenient because the class marks and frequencies are small.
Use class marks $510,530,550,570,590,610,630$. Then $\sum f_ix_i=12(510)+14(530)+8(550)+6(570)+4(590)+3(610)+3(630)=27260$, and $\sum f_i=50$. Therefore $\bar{x}=\dfrac{27260}{50}=545.2$.
The mean daily wage is $₹545.20$.
The class marks are $12,14,16,18,20,22,24$. Total frequency $=44+f$. Also $\sum f_ix_i=7(12)+6(14)+9(16)+13(18)+f(20)+5(22)+4(24)=752+20f$. Given mean $18$, so $\dfrac{752+20f}{44+f}=18$. Hence $752+20f=792+18f$, giving $2f=40$ and $f=20$.
$f=20$.
The class marks are $66.5,69.5,72.5,75.5,78.5,81.5,84.5$. Since the intervals are equal, take assumed mean $a=75.5$ and class width $h=3$. The deviations $u_i=(x_i-a)/h$ are $-3,-2,-1,0,1,2,3$. Then $\sum f_iu_i=2(-3)+4(-2)+3(-1)+8(0)+7(1)+4(2)+2(3)=4$, and $\sum f_i=30$. Mean $=a+h\dfrac{\sum f_iu_i}{\sum f_i}=75.5+3\cdot\dfrac4{30}=75.9$.
The mean is $75.9$ heart beats per minute.
The classes are inclusive, but their class marks are $51,54,57,60,63$. Using the assumed mean method with $a=57$, compute deviations $d_i=x_i-a=-6,-3,0,3,6$. Then $\sum f_id_i=15(-6)+110(-3)+135(0)+115(3)+25(6)=75$, and $\sum f_i=400$. Hence mean $=57+\dfrac{75}{400}=57.1875\approx57.19$.
The mean number of mangoes per box is $57.19$.
Class marks are $125,175,225,275,325$. Compute $\sum f_ix_i=4(125)+5(175)+12(225)+2(275)+2(325)=5275$, and $\sum f_i=25$. Hence $\bar{x}=\dfrac{5275}{25}=211$.
The mean daily expenditure is $₹211$.
The modal class is $35-45$ because it has the highest frequency $23$. With $l=35$, $h=10$, $f_1=23$, $f_0=21$, $f_2=14$, mode $=l+\dfrac{f_1-f_0}{2f_1-f_0-f_2}h=35+\dfrac{2}{46-21-14}\times10=35+\dfrac{20}{11}\approx36.8$. For the mean, class marks are $10,20,30,40,50,60$, so $\sum f_ix_i=2830$ and $\sum f_i=80$. Mean $=\dfrac{2830}{80}=35.375$.
Mode $=36.8$ years and mean $=35.375$ years. The typical patient age is around $36$ years.
The modal class is $60-80$. Here $l=60$, $h=20$, $f_1=61$, $f_0=52$, and $f_2=38$. Mode $=60+\dfrac{61-52}{2(61)-52-38}\times20=60+\dfrac{9}{32}\times20=65.625$ hours, approximately $65.6$ hours.
The modal lifetime is approximately $65.6$ hours.
The modal class is $1500-2000$. Here $l=1500$, $h=500$, $f_1=40$, $f_0=24$, $f_2=33$. Mode $=1500+\dfrac{40-24}{2(40)-24-33}\times500=1500+\dfrac{16}{23}\times500\approx1847.83$. For the mean, class marks are $1250,1750,2250,2750,3250,3750,4250,4750$. Then $\sum f_ix_i=532500$ and $\sum f_i=200$, so mean $=\dfrac{532500}{200}=₹2662.50$.
Modal expenditure $=₹1847.83$ approximately; mean expenditure $=₹2662.50$.
The modal class is $30-35$. With $l=30$, $h=5$, $f_1=10$, $f_0=9$, $f_2=3$, mode $=30+\dfrac{10-9}{20-9-3}\times5=30.625$. For the mean, class marks are $17.5,22.5,27.5,32.5,37.5,42.5,47.5,52.5$. Then $\sum f_ix_i=1022$ and $\sum f_i=35$, so mean $=\dfrac{1022}{35}=29.2$. The modal ratio says the most common class is around $31$ students per teacher; the mean gives the overall average ratio.
Mode $=30.625$ students per teacher and mean $=29.2$ students per teacher.
The modal class is $4000-5000$. Here $l=4000$, $h=1000$, $f_1=18$, $f_0=4$, and $f_2=9$. Mode $=4000+\dfrac{18-4}{2(18)-4-9}\times1000=4000+\dfrac{14}{23}\times1000\approx4608.7$.
The modal number of runs is approximately $4608.7$.
The modal class is $40-50$. With $l=40$, $h=10$, $f_1=20$, $f_0=12$, and $f_2=11$, mode $=40+\dfrac{20-12}{2(20)-12-11}\times10=40+\dfrac{8}{17}\times10\approx44.7$.
The mode is approximately $44.7$ cars.
For the median, $N=68$, so $N/2=34$. Cumulative frequencies are $4,9,22,42,56,64,68$, so the median class is $125-145$. Here $l=125$, $h=20$, $f=20$, and preceding cumulative frequency $cf=22$. Median $=125+\dfrac{34-22}{20}\times20=137$. For the mean, class marks are $75,95,115,135,155,175,195$ and $\sum f_ix_i=9320$, so mean $=\dfrac{9320}{68}\approx137.06$. For the mode, modal class is $125-145$, and mode $=125+\dfrac{20-13}{40-13-14}\times20=135.77$ units approximately.
Median $=137$ units, mean $=137.06$ units approximately, and mode $=135.77$ units approximately. The three measures are close, so consumption is centred near $136$-$137$ units.
Since the total frequency is $60$, $5+x+20+15+y+5=60$, so $x+y=15$. The median $28.5$ lies in class $20-30$. Here $l=20$, $h=10$, $f=20$, and preceding cumulative frequency $cf=5+x$. Using $28.5=20+\dfrac{30-(5+x)}{20}\times10$, we get $8.5=\dfrac{25-x}{2}$, so $x=8$. Hence $y=15-8=7$.
$x=8$ and $y=7$.
Convert the less-than cumulative distribution to class frequencies: $18-20:2$, $20-25:4$, $25-30:18$, $30-35:21$, $35-40:33$, $40-45:11$, $45-50:3$, $50-55:6$, $55-60:2$. Here $N=100$, so $N/2=50$. The cumulative frequency before $35-40$ is $45$, so the median class is $35-40$. Thus median $=35+\dfrac{50-45}{33}\times5=35+\dfrac{25}{33}\approx35.76$ years.
The median age is approximately $35.76$ years.
Because measurements are correct to one millimetre, use continuous class boundaries: $117.5-126.5$, $126.5-135.5$, $135.5-144.5$, $144.5-153.5$, etc. Here $N=40$, so $N/2=20$. Cumulative frequencies are $3,8,17,29,34,38,40$, so the median class is $144.5-153.5$. With $l=144.5$, $h=9$, $f=12$, and $cf=17$, median $=144.5+\dfrac{20-17}{12}\times9=146.75$ mm.
The median length is approximately $146.75$ mm.
Here $N=400$, so $N/2=200$. Cumulative frequencies are $14,70,130,216,290,352,400$, so the median class is $3000-3500$. With $l=3000$, $h=500$, $f=86$, and $cf=130$, median $=3000+\dfrac{200-130}{86}\times500\approx3406.98$ hours.
The median lifetime is approximately $3406.98$ hours.
Here $N=100$, so $N/2=50$. Cumulative frequencies are $6,36,76,92,96,100$, so the median class is $7-10$. With $l=7$, $h=3$, $f=40$, and $cf=36$, median $=7+\dfrac{50-36}{40}\times3=8.05$.
The median number of letters is $8.05$.